1 // SPDX-License-Identifier: GPL-2.0-or-later
 
   3  * Universal Flash Storage Host controller driver Core
 
   4  * Copyright (C) 2011-2013 Samsung India Software Operations
 
   5  * Copyright (c) 2013-2016, The Linux Foundation. All rights reserved.
 
   8  *      Santosh Yaraganavi <santosh.sy@samsung.com>
 
   9  *      Vinayak Holikatti <h.vinayak@samsung.com>
 
  12 #include <linux/async.h>
 
  13 #include <linux/devfreq.h>
 
  14 #include <linux/nls.h>
 
  16 #include <linux/bitfield.h>
 
  17 #include <linux/blk-pm.h>
 
  18 #include <linux/blkdev.h>
 
  19 #include <linux/clk.h>
 
  20 #include <linux/delay.h>
 
  21 #include <linux/interrupt.h>
 
  22 #include <linux/module.h>
 
  23 #include <linux/regulator/consumer.h>
 
  24 #include <linux/sched/clock.h>
 
  25 #include <scsi/scsi_cmnd.h>
 
  26 #include <scsi/scsi_dbg.h>
 
  27 #include <scsi/scsi_driver.h>
 
  28 #include <scsi/scsi_eh.h>
 
  29 #include "ufshcd-priv.h"
 
  30 #include <ufs/ufs_quirks.h>
 
  31 #include <ufs/unipro.h>
 
  32 #include "ufs-sysfs.h"
 
  33 #include "ufs-debugfs.h"
 
  34 #include "ufs-fault-injection.h"
 
  36 #include "ufshcd-crypto.h"
 
  38 #include <asm/unaligned.h>
 
  40 #define CREATE_TRACE_POINTS
 
  41 #include <trace/events/ufs.h>
 
  43 #define UFSHCD_ENABLE_INTRS     (UTP_TRANSFER_REQ_COMPL |\
 
  47 #define UFSHCD_ENABLE_MCQ_INTRS (UTP_TASK_REQ_COMPL |\
 
  52 /* UIC command timeout, unit: ms */
 
  53 #define UIC_CMD_TIMEOUT 500
 
  55 /* NOP OUT retries waiting for NOP IN response */
 
  56 #define NOP_OUT_RETRIES    10
 
  57 /* Timeout after 50 msecs if NOP OUT hangs without response */
 
  58 #define NOP_OUT_TIMEOUT    50 /* msecs */
 
  60 /* Query request retries */
 
  61 #define QUERY_REQ_RETRIES 3
 
  62 /* Query request timeout */
 
  63 #define QUERY_REQ_TIMEOUT 1500 /* 1.5 seconds */
 
  65 /* Advanced RPMB request timeout */
 
  66 #define ADVANCED_RPMB_REQ_TIMEOUT  3000 /* 3 seconds */
 
  68 /* Task management command timeout */
 
  69 #define TM_CMD_TIMEOUT  100 /* msecs */
 
  71 /* maximum number of retries for a general UIC command  */
 
  72 #define UFS_UIC_COMMAND_RETRIES 3
 
  74 /* maximum number of link-startup retries */
 
  75 #define DME_LINKSTARTUP_RETRIES 3
 
  77 /* maximum number of reset retries before giving up */
 
  78 #define MAX_HOST_RESET_RETRIES 5
 
  80 /* Maximum number of error handler retries before giving up */
 
  81 #define MAX_ERR_HANDLER_RETRIES 5
 
  83 /* Expose the flag value from utp_upiu_query.value */
 
  84 #define MASK_QUERY_UPIU_FLAG_LOC 0xFF
 
  86 /* Interrupt aggregation default timeout, unit: 40us */
 
  87 #define INT_AGGR_DEF_TO 0x02
 
  89 /* default delay of autosuspend: 2000 ms */
 
  90 #define RPM_AUTOSUSPEND_DELAY_MS 2000
 
  92 /* Default delay of RPM device flush delayed work */
 
  93 #define RPM_DEV_FLUSH_RECHECK_WORK_DELAY_MS 5000
 
  95 /* Default value of wait time before gating device ref clock */
 
  96 #define UFSHCD_REF_CLK_GATING_WAIT_US 0xFF /* microsecs */
 
  98 /* Polling time to wait for fDeviceInit */
 
  99 #define FDEVICEINIT_COMPL_TIMEOUT 1500 /* millisecs */
 
 101 /* UFSHC 4.0 compliant HC support this mode, refer param_set_mcq_mode() */
 
 102 static bool use_mcq_mode = true;
 
 104 static bool is_mcq_supported(struct ufs_hba *hba)
 
 106         return hba->mcq_sup && use_mcq_mode;
 
 109 static int param_set_mcq_mode(const char *val, const struct kernel_param *kp)
 
 113         ret = param_set_bool(val, kp);
 
 120 static const struct kernel_param_ops mcq_mode_ops = {
 
 121         .set = param_set_mcq_mode,
 
 122         .get = param_get_bool,
 
 125 module_param_cb(use_mcq_mode, &mcq_mode_ops, &use_mcq_mode, 0644);
 
 126 MODULE_PARM_DESC(use_mcq_mode, "Control MCQ mode for controllers starting from UFSHCI 4.0. 1 - enable MCQ, 0 - disable MCQ. MCQ is enabled by default");
 
 128 #define ufshcd_toggle_vreg(_dev, _vreg, _on)                            \
 
 132                         _ret = ufshcd_enable_vreg(_dev, _vreg);         \
 
 134                         _ret = ufshcd_disable_vreg(_dev, _vreg);        \
 
 138 #define ufshcd_hex_dump(prefix_str, buf, len) do {                       \
 
 139         size_t __len = (len);                                            \
 
 140         print_hex_dump(KERN_ERR, prefix_str,                             \
 
 141                        __len > 4 ? DUMP_PREFIX_OFFSET : DUMP_PREFIX_NONE,\
 
 142                        16, 4, buf, __len, false);                        \
 
 145 int ufshcd_dump_regs(struct ufs_hba *hba, size_t offset, size_t len,
 
 151         if (offset % 4 != 0 || len % 4 != 0) /* keep readl happy */
 
 154         regs = kzalloc(len, GFP_ATOMIC);
 
 158         for (pos = 0; pos < len; pos += 4) {
 
 160                     pos >= REG_UIC_ERROR_CODE_PHY_ADAPTER_LAYER &&
 
 161                     pos <= REG_UIC_ERROR_CODE_DME)
 
 163                 regs[pos / 4] = ufshcd_readl(hba, offset + pos);
 
 166         ufshcd_hex_dump(prefix, regs, len);
 
 171 EXPORT_SYMBOL_GPL(ufshcd_dump_regs);
 
 174         UFSHCD_MAX_CHANNEL      = 0,
 
 176         UFSHCD_CMD_PER_LUN      = 32 - UFSHCD_NUM_RESERVED,
 
 177         UFSHCD_CAN_QUEUE        = 32 - UFSHCD_NUM_RESERVED,
 
 180 static const char *const ufshcd_state_name[] = {
 
 181         [UFSHCD_STATE_RESET]                    = "reset",
 
 182         [UFSHCD_STATE_OPERATIONAL]              = "operational",
 
 183         [UFSHCD_STATE_ERROR]                    = "error",
 
 184         [UFSHCD_STATE_EH_SCHEDULED_FATAL]       = "eh_fatal",
 
 185         [UFSHCD_STATE_EH_SCHEDULED_NON_FATAL]   = "eh_non_fatal",
 
 188 /* UFSHCD error handling flags */
 
 190         UFSHCD_EH_IN_PROGRESS = (1 << 0),
 
 193 /* UFSHCD UIC layer error flags */
 
 195         UFSHCD_UIC_DL_PA_INIT_ERROR = (1 << 0), /* Data link layer error */
 
 196         UFSHCD_UIC_DL_NAC_RECEIVED_ERROR = (1 << 1), /* Data link layer error */
 
 197         UFSHCD_UIC_DL_TCx_REPLAY_ERROR = (1 << 2), /* Data link layer error */
 
 198         UFSHCD_UIC_NL_ERROR = (1 << 3), /* Network layer error */
 
 199         UFSHCD_UIC_TL_ERROR = (1 << 4), /* Transport Layer error */
 
 200         UFSHCD_UIC_DME_ERROR = (1 << 5), /* DME error */
 
 201         UFSHCD_UIC_PA_GENERIC_ERROR = (1 << 6), /* Generic PA error */
 
 204 #define ufshcd_set_eh_in_progress(h) \
 
 205         ((h)->eh_flags |= UFSHCD_EH_IN_PROGRESS)
 
 206 #define ufshcd_eh_in_progress(h) \
 
 207         ((h)->eh_flags & UFSHCD_EH_IN_PROGRESS)
 
 208 #define ufshcd_clear_eh_in_progress(h) \
 
 209         ((h)->eh_flags &= ~UFSHCD_EH_IN_PROGRESS)
 
 211 const struct ufs_pm_lvl_states ufs_pm_lvl_states[] = {
 
 212         [UFS_PM_LVL_0] = {UFS_ACTIVE_PWR_MODE, UIC_LINK_ACTIVE_STATE},
 
 213         [UFS_PM_LVL_1] = {UFS_ACTIVE_PWR_MODE, UIC_LINK_HIBERN8_STATE},
 
 214         [UFS_PM_LVL_2] = {UFS_SLEEP_PWR_MODE, UIC_LINK_ACTIVE_STATE},
 
 215         [UFS_PM_LVL_3] = {UFS_SLEEP_PWR_MODE, UIC_LINK_HIBERN8_STATE},
 
 216         [UFS_PM_LVL_4] = {UFS_POWERDOWN_PWR_MODE, UIC_LINK_HIBERN8_STATE},
 
 217         [UFS_PM_LVL_5] = {UFS_POWERDOWN_PWR_MODE, UIC_LINK_OFF_STATE},
 
 219          * For DeepSleep, the link is first put in hibern8 and then off.
 
 220          * Leaving the link in hibern8 is not supported.
 
 222         [UFS_PM_LVL_6] = {UFS_DEEPSLEEP_PWR_MODE, UIC_LINK_OFF_STATE},
 
 225 static inline enum ufs_dev_pwr_mode
 
 226 ufs_get_pm_lvl_to_dev_pwr_mode(enum ufs_pm_level lvl)
 
 228         return ufs_pm_lvl_states[lvl].dev_state;
 
 231 static inline enum uic_link_state
 
 232 ufs_get_pm_lvl_to_link_pwr_state(enum ufs_pm_level lvl)
 
 234         return ufs_pm_lvl_states[lvl].link_state;
 
 237 static inline enum ufs_pm_level
 
 238 ufs_get_desired_pm_lvl_for_dev_link_state(enum ufs_dev_pwr_mode dev_state,
 
 239                                         enum uic_link_state link_state)
 
 241         enum ufs_pm_level lvl;
 
 243         for (lvl = UFS_PM_LVL_0; lvl < UFS_PM_LVL_MAX; lvl++) {
 
 244                 if ((ufs_pm_lvl_states[lvl].dev_state == dev_state) &&
 
 245                         (ufs_pm_lvl_states[lvl].link_state == link_state))
 
 249         /* if no match found, return the level 0 */
 
 253 static const struct ufs_dev_quirk ufs_fixups[] = {
 
 254         /* UFS cards deviations table */
 
 255         { .wmanufacturerid = UFS_VENDOR_MICRON,
 
 256           .model = UFS_ANY_MODEL,
 
 257           .quirk = UFS_DEVICE_QUIRK_DELAY_BEFORE_LPM |
 
 258                    UFS_DEVICE_QUIRK_SWAP_L2P_ENTRY_FOR_HPB_READ },
 
 259         { .wmanufacturerid = UFS_VENDOR_SAMSUNG,
 
 260           .model = UFS_ANY_MODEL,
 
 261           .quirk = UFS_DEVICE_QUIRK_DELAY_BEFORE_LPM |
 
 262                    UFS_DEVICE_QUIRK_HOST_PA_TACTIVATE |
 
 263                    UFS_DEVICE_QUIRK_RECOVERY_FROM_DL_NAC_ERRORS },
 
 264         { .wmanufacturerid = UFS_VENDOR_SKHYNIX,
 
 265           .model = UFS_ANY_MODEL,
 
 266           .quirk = UFS_DEVICE_QUIRK_HOST_PA_SAVECONFIGTIME },
 
 267         { .wmanufacturerid = UFS_VENDOR_SKHYNIX,
 
 268           .model = "hB8aL1" /*H28U62301AMR*/,
 
 269           .quirk = UFS_DEVICE_QUIRK_HOST_VS_DEBUGSAVECONFIGTIME },
 
 270         { .wmanufacturerid = UFS_VENDOR_TOSHIBA,
 
 271           .model = UFS_ANY_MODEL,
 
 272           .quirk = UFS_DEVICE_QUIRK_DELAY_BEFORE_LPM },
 
 273         { .wmanufacturerid = UFS_VENDOR_TOSHIBA,
 
 274           .model = "THGLF2G9C8KBADG",
 
 275           .quirk = UFS_DEVICE_QUIRK_PA_TACTIVATE },
 
 276         { .wmanufacturerid = UFS_VENDOR_TOSHIBA,
 
 277           .model = "THGLF2G9D8KBADG",
 
 278           .quirk = UFS_DEVICE_QUIRK_PA_TACTIVATE },
 
 282 static irqreturn_t ufshcd_tmc_handler(struct ufs_hba *hba);
 
 283 static void ufshcd_async_scan(void *data, async_cookie_t cookie);
 
 284 static int ufshcd_reset_and_restore(struct ufs_hba *hba);
 
 285 static int ufshcd_eh_host_reset_handler(struct scsi_cmnd *cmd);
 
 286 static int ufshcd_clear_tm_cmd(struct ufs_hba *hba, int tag);
 
 287 static void ufshcd_hba_exit(struct ufs_hba *hba);
 
 288 static int ufshcd_probe_hba(struct ufs_hba *hba, bool init_dev_params);
 
 289 static int ufshcd_setup_clocks(struct ufs_hba *hba, bool on);
 
 290 static inline void ufshcd_add_delay_before_dme_cmd(struct ufs_hba *hba);
 
 291 static int ufshcd_host_reset_and_restore(struct ufs_hba *hba);
 
 292 static void ufshcd_resume_clkscaling(struct ufs_hba *hba);
 
 293 static void ufshcd_suspend_clkscaling(struct ufs_hba *hba);
 
 294 static void __ufshcd_suspend_clkscaling(struct ufs_hba *hba);
 
 295 static int ufshcd_scale_clks(struct ufs_hba *hba, bool scale_up);
 
 296 static irqreturn_t ufshcd_intr(int irq, void *__hba);
 
 297 static int ufshcd_change_power_mode(struct ufs_hba *hba,
 
 298                              struct ufs_pa_layer_attr *pwr_mode);
 
 299 static int ufshcd_setup_hba_vreg(struct ufs_hba *hba, bool on);
 
 300 static int ufshcd_setup_vreg(struct ufs_hba *hba, bool on);
 
 301 static inline int ufshcd_config_vreg_hpm(struct ufs_hba *hba,
 
 302                                          struct ufs_vreg *vreg);
 
 303 static void ufshcd_wb_toggle_buf_flush_during_h8(struct ufs_hba *hba,
 
 305 static void ufshcd_hba_vreg_set_lpm(struct ufs_hba *hba);
 
 306 static void ufshcd_hba_vreg_set_hpm(struct ufs_hba *hba);
 
 308 static inline void ufshcd_enable_irq(struct ufs_hba *hba)
 
 310         if (!hba->is_irq_enabled) {
 
 311                 enable_irq(hba->irq);
 
 312                 hba->is_irq_enabled = true;
 
 316 static inline void ufshcd_disable_irq(struct ufs_hba *hba)
 
 318         if (hba->is_irq_enabled) {
 
 319                 disable_irq(hba->irq);
 
 320                 hba->is_irq_enabled = false;
 
 324 static void ufshcd_configure_wb(struct ufs_hba *hba)
 
 326         if (!ufshcd_is_wb_allowed(hba))
 
 329         ufshcd_wb_toggle(hba, true);
 
 331         ufshcd_wb_toggle_buf_flush_during_h8(hba, true);
 
 333         if (ufshcd_is_wb_buf_flush_allowed(hba))
 
 334                 ufshcd_wb_toggle_buf_flush(hba, true);
 
 337 static void ufshcd_scsi_unblock_requests(struct ufs_hba *hba)
 
 339         if (atomic_dec_and_test(&hba->scsi_block_reqs_cnt))
 
 340                 scsi_unblock_requests(hba->host);
 
 343 static void ufshcd_scsi_block_requests(struct ufs_hba *hba)
 
 345         if (atomic_inc_return(&hba->scsi_block_reqs_cnt) == 1)
 
 346                 scsi_block_requests(hba->host);
 
 349 static void ufshcd_add_cmd_upiu_trace(struct ufs_hba *hba, unsigned int tag,
 
 350                                       enum ufs_trace_str_t str_t)
 
 352         struct utp_upiu_req *rq = hba->lrb[tag].ucd_req_ptr;
 
 353         struct utp_upiu_header *header;
 
 355         if (!trace_ufshcd_upiu_enabled())
 
 358         if (str_t == UFS_CMD_SEND)
 
 359                 header = &rq->header;
 
 361                 header = &hba->lrb[tag].ucd_rsp_ptr->header;
 
 363         trace_ufshcd_upiu(dev_name(hba->dev), str_t, header, &rq->sc.cdb,
 
 367 static void ufshcd_add_query_upiu_trace(struct ufs_hba *hba,
 
 368                                         enum ufs_trace_str_t str_t,
 
 369                                         struct utp_upiu_req *rq_rsp)
 
 371         if (!trace_ufshcd_upiu_enabled())
 
 374         trace_ufshcd_upiu(dev_name(hba->dev), str_t, &rq_rsp->header,
 
 375                           &rq_rsp->qr, UFS_TSF_OSF);
 
 378 static void ufshcd_add_tm_upiu_trace(struct ufs_hba *hba, unsigned int tag,
 
 379                                      enum ufs_trace_str_t str_t)
 
 381         struct utp_task_req_desc *descp = &hba->utmrdl_base_addr[tag];
 
 383         if (!trace_ufshcd_upiu_enabled())
 
 386         if (str_t == UFS_TM_SEND)
 
 387                 trace_ufshcd_upiu(dev_name(hba->dev), str_t,
 
 388                                   &descp->upiu_req.req_header,
 
 389                                   &descp->upiu_req.input_param1,
 
 392                 trace_ufshcd_upiu(dev_name(hba->dev), str_t,
 
 393                                   &descp->upiu_rsp.rsp_header,
 
 394                                   &descp->upiu_rsp.output_param1,
 
 398 static void ufshcd_add_uic_command_trace(struct ufs_hba *hba,
 
 399                                          const struct uic_command *ucmd,
 
 400                                          enum ufs_trace_str_t str_t)
 
 404         if (!trace_ufshcd_uic_command_enabled())
 
 407         if (str_t == UFS_CMD_SEND)
 
 410                 cmd = ufshcd_readl(hba, REG_UIC_COMMAND);
 
 412         trace_ufshcd_uic_command(dev_name(hba->dev), str_t, cmd,
 
 413                                  ufshcd_readl(hba, REG_UIC_COMMAND_ARG_1),
 
 414                                  ufshcd_readl(hba, REG_UIC_COMMAND_ARG_2),
 
 415                                  ufshcd_readl(hba, REG_UIC_COMMAND_ARG_3));
 
 418 static void ufshcd_add_command_trace(struct ufs_hba *hba, unsigned int tag,
 
 419                                      enum ufs_trace_str_t str_t)
 
 422         u8 opcode = 0, group_id = 0;
 
 426         struct ufshcd_lrb *lrbp = &hba->lrb[tag];
 
 427         struct scsi_cmnd *cmd = lrbp->cmd;
 
 428         struct request *rq = scsi_cmd_to_rq(cmd);
 
 429         int transfer_len = -1;
 
 434         /* trace UPIU also */
 
 435         ufshcd_add_cmd_upiu_trace(hba, tag, str_t);
 
 436         if (!trace_ufshcd_command_enabled())
 
 439         opcode = cmd->cmnd[0];
 
 441         if (opcode == READ_10 || opcode == WRITE_10) {
 
 443                  * Currently we only fully trace read(10) and write(10) commands
 
 446                        be32_to_cpu(lrbp->ucd_req_ptr->sc.exp_data_transfer_len);
 
 447                 lba = scsi_get_lba(cmd);
 
 448                 if (opcode == WRITE_10)
 
 449                         group_id = lrbp->cmd->cmnd[6];
 
 450         } else if (opcode == UNMAP) {
 
 452                  * The number of Bytes to be unmapped beginning with the lba.
 
 454                 transfer_len = blk_rq_bytes(rq);
 
 455                 lba = scsi_get_lba(cmd);
 
 458         intr = ufshcd_readl(hba, REG_INTERRUPT_STATUS);
 
 460         if (is_mcq_enabled(hba)) {
 
 461                 struct ufs_hw_queue *hwq = ufshcd_mcq_req_to_hwq(hba, rq);
 
 465                 doorbell = ufshcd_readl(hba, REG_UTP_TRANSFER_REQ_DOOR_BELL);
 
 467         trace_ufshcd_command(dev_name(hba->dev), str_t, tag,
 
 468                         doorbell, hwq_id, transfer_len, intr, lba, opcode, group_id);
 
 471 static void ufshcd_print_clk_freqs(struct ufs_hba *hba)
 
 473         struct ufs_clk_info *clki;
 
 474         struct list_head *head = &hba->clk_list_head;
 
 476         if (list_empty(head))
 
 479         list_for_each_entry(clki, head, list) {
 
 480                 if (!IS_ERR_OR_NULL(clki->clk) && clki->min_freq &&
 
 482                         dev_err(hba->dev, "clk: %s, rate: %u\n",
 
 483                                         clki->name, clki->curr_freq);
 
 487 static void ufshcd_print_evt(struct ufs_hba *hba, u32 id,
 
 488                              const char *err_name)
 
 492         const struct ufs_event_hist *e;
 
 494         if (id >= UFS_EVT_CNT)
 
 497         e = &hba->ufs_stats.event[id];
 
 499         for (i = 0; i < UFS_EVENT_HIST_LENGTH; i++) {
 
 500                 int p = (i + e->pos) % UFS_EVENT_HIST_LENGTH;
 
 502                 if (e->tstamp[p] == 0)
 
 504                 dev_err(hba->dev, "%s[%d] = 0x%x at %lld us\n", err_name, p,
 
 505                         e->val[p], div_u64(e->tstamp[p], 1000));
 
 510                 dev_err(hba->dev, "No record of %s\n", err_name);
 
 512                 dev_err(hba->dev, "%s: total cnt=%llu\n", err_name, e->cnt);
 
 515 static void ufshcd_print_evt_hist(struct ufs_hba *hba)
 
 517         ufshcd_dump_regs(hba, 0, UFSHCI_REG_SPACE_SIZE, "host_regs: ");
 
 519         ufshcd_print_evt(hba, UFS_EVT_PA_ERR, "pa_err");
 
 520         ufshcd_print_evt(hba, UFS_EVT_DL_ERR, "dl_err");
 
 521         ufshcd_print_evt(hba, UFS_EVT_NL_ERR, "nl_err");
 
 522         ufshcd_print_evt(hba, UFS_EVT_TL_ERR, "tl_err");
 
 523         ufshcd_print_evt(hba, UFS_EVT_DME_ERR, "dme_err");
 
 524         ufshcd_print_evt(hba, UFS_EVT_AUTO_HIBERN8_ERR,
 
 526         ufshcd_print_evt(hba, UFS_EVT_FATAL_ERR, "fatal_err");
 
 527         ufshcd_print_evt(hba, UFS_EVT_LINK_STARTUP_FAIL,
 
 528                          "link_startup_fail");
 
 529         ufshcd_print_evt(hba, UFS_EVT_RESUME_ERR, "resume_fail");
 
 530         ufshcd_print_evt(hba, UFS_EVT_SUSPEND_ERR,
 
 532         ufshcd_print_evt(hba, UFS_EVT_WL_RES_ERR, "wlun resume_fail");
 
 533         ufshcd_print_evt(hba, UFS_EVT_WL_SUSP_ERR,
 
 534                          "wlun suspend_fail");
 
 535         ufshcd_print_evt(hba, UFS_EVT_DEV_RESET, "dev_reset");
 
 536         ufshcd_print_evt(hba, UFS_EVT_HOST_RESET, "host_reset");
 
 537         ufshcd_print_evt(hba, UFS_EVT_ABORT, "task_abort");
 
 539         ufshcd_vops_dbg_register_dump(hba);
 
 543 void ufshcd_print_tr(struct ufs_hba *hba, int tag, bool pr_prdt)
 
 545         const struct ufshcd_lrb *lrbp;
 
 548         lrbp = &hba->lrb[tag];
 
 550         dev_err(hba->dev, "UPIU[%d] - issue time %lld us\n",
 
 551                         tag, div_u64(lrbp->issue_time_stamp_local_clock, 1000));
 
 552         dev_err(hba->dev, "UPIU[%d] - complete time %lld us\n",
 
 553                         tag, div_u64(lrbp->compl_time_stamp_local_clock, 1000));
 
 555                 "UPIU[%d] - Transfer Request Descriptor phys@0x%llx\n",
 
 556                 tag, (u64)lrbp->utrd_dma_addr);
 
 558         ufshcd_hex_dump("UPIU TRD: ", lrbp->utr_descriptor_ptr,
 
 559                         sizeof(struct utp_transfer_req_desc));
 
 560         dev_err(hba->dev, "UPIU[%d] - Request UPIU phys@0x%llx\n", tag,
 
 561                 (u64)lrbp->ucd_req_dma_addr);
 
 562         ufshcd_hex_dump("UPIU REQ: ", lrbp->ucd_req_ptr,
 
 563                         sizeof(struct utp_upiu_req));
 
 564         dev_err(hba->dev, "UPIU[%d] - Response UPIU phys@0x%llx\n", tag,
 
 565                 (u64)lrbp->ucd_rsp_dma_addr);
 
 566         ufshcd_hex_dump("UPIU RSP: ", lrbp->ucd_rsp_ptr,
 
 567                         sizeof(struct utp_upiu_rsp));
 
 569         prdt_length = le16_to_cpu(
 
 570                 lrbp->utr_descriptor_ptr->prd_table_length);
 
 571         if (hba->quirks & UFSHCD_QUIRK_PRDT_BYTE_GRAN)
 
 572                 prdt_length /= ufshcd_sg_entry_size(hba);
 
 575                 "UPIU[%d] - PRDT - %d entries  phys@0x%llx\n",
 
 577                 (u64)lrbp->ucd_prdt_dma_addr);
 
 580                 ufshcd_hex_dump("UPIU PRDT: ", lrbp->ucd_prdt_ptr,
 
 581                         ufshcd_sg_entry_size(hba) * prdt_length);
 
 584 static bool ufshcd_print_tr_iter(struct request *req, void *priv)
 
 586         struct scsi_device *sdev = req->q->queuedata;
 
 587         struct Scsi_Host *shost = sdev->host;
 
 588         struct ufs_hba *hba = shost_priv(shost);
 
 590         ufshcd_print_tr(hba, req->tag, *(bool *)priv);
 
 596  * ufshcd_print_trs_all - print trs for all started requests.
 
 597  * @hba: per-adapter instance.
 
 598  * @pr_prdt: need to print prdt or not.
 
 600 static void ufshcd_print_trs_all(struct ufs_hba *hba, bool pr_prdt)
 
 602         blk_mq_tagset_busy_iter(&hba->host->tag_set, ufshcd_print_tr_iter, &pr_prdt);
 
 605 static void ufshcd_print_tmrs(struct ufs_hba *hba, unsigned long bitmap)
 
 609         for_each_set_bit(tag, &bitmap, hba->nutmrs) {
 
 610                 struct utp_task_req_desc *tmrdp = &hba->utmrdl_base_addr[tag];
 
 612                 dev_err(hba->dev, "TM[%d] - Task Management Header\n", tag);
 
 613                 ufshcd_hex_dump("", tmrdp, sizeof(*tmrdp));
 
 617 static void ufshcd_print_host_state(struct ufs_hba *hba)
 
 619         const struct scsi_device *sdev_ufs = hba->ufs_device_wlun;
 
 621         dev_err(hba->dev, "UFS Host state=%d\n", hba->ufshcd_state);
 
 622         dev_err(hba->dev, "outstanding reqs=0x%lx tasks=0x%lx\n",
 
 623                 hba->outstanding_reqs, hba->outstanding_tasks);
 
 624         dev_err(hba->dev, "saved_err=0x%x, saved_uic_err=0x%x\n",
 
 625                 hba->saved_err, hba->saved_uic_err);
 
 626         dev_err(hba->dev, "Device power mode=%d, UIC link state=%d\n",
 
 627                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
 628         dev_err(hba->dev, "PM in progress=%d, sys. suspended=%d\n",
 
 629                 hba->pm_op_in_progress, hba->is_sys_suspended);
 
 630         dev_err(hba->dev, "Auto BKOPS=%d, Host self-block=%d\n",
 
 631                 hba->auto_bkops_enabled, hba->host->host_self_blocked);
 
 632         dev_err(hba->dev, "Clk gate=%d\n", hba->clk_gating.state);
 
 634                 "last_hibern8_exit_tstamp at %lld us, hibern8_exit_cnt=%d\n",
 
 635                 div_u64(hba->ufs_stats.last_hibern8_exit_tstamp, 1000),
 
 636                 hba->ufs_stats.hibern8_exit_cnt);
 
 637         dev_err(hba->dev, "last intr at %lld us, last intr status=0x%x\n",
 
 638                 div_u64(hba->ufs_stats.last_intr_ts, 1000),
 
 639                 hba->ufs_stats.last_intr_status);
 
 640         dev_err(hba->dev, "error handling flags=0x%x, req. abort count=%d\n",
 
 641                 hba->eh_flags, hba->req_abort_count);
 
 642         dev_err(hba->dev, "hba->ufs_version=0x%x, Host capabilities=0x%x, caps=0x%x\n",
 
 643                 hba->ufs_version, hba->capabilities, hba->caps);
 
 644         dev_err(hba->dev, "quirks=0x%x, dev. quirks=0x%x\n", hba->quirks,
 
 647                 dev_err(hba->dev, "UFS dev info: %.8s %.16s rev %.4s\n",
 
 648                         sdev_ufs->vendor, sdev_ufs->model, sdev_ufs->rev);
 
 650         ufshcd_print_clk_freqs(hba);
 
 654  * ufshcd_print_pwr_info - print power params as saved in hba
 
 656  * @hba: per-adapter instance
 
 658 static void ufshcd_print_pwr_info(struct ufs_hba *hba)
 
 660         static const char * const names[] = {
 
 671          * Using dev_dbg to avoid messages during runtime PM to avoid
 
 672          * never-ending cycles of messages written back to storage by user space
 
 673          * causing runtime resume, causing more messages and so on.
 
 675         dev_dbg(hba->dev, "%s:[RX, TX]: gear=[%d, %d], lane[%d, %d], pwr[%s, %s], rate = %d\n",
 
 677                  hba->pwr_info.gear_rx, hba->pwr_info.gear_tx,
 
 678                  hba->pwr_info.lane_rx, hba->pwr_info.lane_tx,
 
 679                  names[hba->pwr_info.pwr_rx],
 
 680                  names[hba->pwr_info.pwr_tx],
 
 681                  hba->pwr_info.hs_rate);
 
 684 static void ufshcd_device_reset(struct ufs_hba *hba)
 
 688         err = ufshcd_vops_device_reset(hba);
 
 691                 ufshcd_set_ufs_dev_active(hba);
 
 692                 if (ufshcd_is_wb_allowed(hba)) {
 
 693                         hba->dev_info.wb_enabled = false;
 
 694                         hba->dev_info.wb_buf_flush_enabled = false;
 
 697         if (err != -EOPNOTSUPP)
 
 698                 ufshcd_update_evt_hist(hba, UFS_EVT_DEV_RESET, err);
 
 701 void ufshcd_delay_us(unsigned long us, unsigned long tolerance)
 
 709                 usleep_range(us, us + tolerance);
 
 711 EXPORT_SYMBOL_GPL(ufshcd_delay_us);
 
 714  * ufshcd_wait_for_register - wait for register value to change
 
 715  * @hba: per-adapter interface
 
 716  * @reg: mmio register offset
 
 717  * @mask: mask to apply to the read register value
 
 718  * @val: value to wait for
 
 719  * @interval_us: polling interval in microseconds
 
 720  * @timeout_ms: timeout in milliseconds
 
 723  * -ETIMEDOUT on error, zero on success.
 
 725 static int ufshcd_wait_for_register(struct ufs_hba *hba, u32 reg, u32 mask,
 
 726                                 u32 val, unsigned long interval_us,
 
 727                                 unsigned long timeout_ms)
 
 730         unsigned long timeout = jiffies + msecs_to_jiffies(timeout_ms);
 
 732         /* ignore bits that we don't intend to wait on */
 
 735         while ((ufshcd_readl(hba, reg) & mask) != val) {
 
 736                 usleep_range(interval_us, interval_us + 50);
 
 737                 if (time_after(jiffies, timeout)) {
 
 738                         if ((ufshcd_readl(hba, reg) & mask) != val)
 
 748  * ufshcd_get_intr_mask - Get the interrupt bit mask
 
 749  * @hba: Pointer to adapter instance
 
 751  * Returns interrupt bit mask per version
 
 753 static inline u32 ufshcd_get_intr_mask(struct ufs_hba *hba)
 
 755         if (hba->ufs_version == ufshci_version(1, 0))
 
 756                 return INTERRUPT_MASK_ALL_VER_10;
 
 757         if (hba->ufs_version <= ufshci_version(2, 0))
 
 758                 return INTERRUPT_MASK_ALL_VER_11;
 
 760         return INTERRUPT_MASK_ALL_VER_21;
 
 764  * ufshcd_get_ufs_version - Get the UFS version supported by the HBA
 
 765  * @hba: Pointer to adapter instance
 
 767  * Returns UFSHCI version supported by the controller
 
 769 static inline u32 ufshcd_get_ufs_version(struct ufs_hba *hba)
 
 773         if (hba->quirks & UFSHCD_QUIRK_BROKEN_UFS_HCI_VERSION)
 
 774                 ufshci_ver = ufshcd_vops_get_ufs_hci_version(hba);
 
 776                 ufshci_ver = ufshcd_readl(hba, REG_UFS_VERSION);
 
 779          * UFSHCI v1.x uses a different version scheme, in order
 
 780          * to allow the use of comparisons with the ufshci_version
 
 781          * function, we convert it to the same scheme as ufs 2.0+.
 
 783         if (ufshci_ver & 0x00010000)
 
 784                 return ufshci_version(1, ufshci_ver & 0x00000100);
 
 790  * ufshcd_is_device_present - Check if any device connected to
 
 791  *                            the host controller
 
 792  * @hba: pointer to adapter instance
 
 794  * Returns true if device present, false if no device detected
 
 796 static inline bool ufshcd_is_device_present(struct ufs_hba *hba)
 
 798         return ufshcd_readl(hba, REG_CONTROLLER_STATUS) & DEVICE_PRESENT;
 
 802  * ufshcd_get_tr_ocs - Get the UTRD Overall Command Status
 
 803  * @lrbp: pointer to local command reference block
 
 804  * @cqe: pointer to the completion queue entry
 
 806  * This function is used to get the OCS field from UTRD
 
 807  * Returns the OCS field in the UTRD
 
 809 static enum utp_ocs ufshcd_get_tr_ocs(struct ufshcd_lrb *lrbp,
 
 810                                       struct cq_entry *cqe)
 
 813                 return le32_to_cpu(cqe->status) & MASK_OCS;
 
 815         return le32_to_cpu(lrbp->utr_descriptor_ptr->header.dword_2) & MASK_OCS;
 
 819  * ufshcd_utrl_clear() - Clear requests from the controller request list.
 
 820  * @hba: per adapter instance
 
 821  * @mask: mask with one bit set for each request to be cleared
 
 823 static inline void ufshcd_utrl_clear(struct ufs_hba *hba, u32 mask)
 
 825         if (hba->quirks & UFSHCI_QUIRK_BROKEN_REQ_LIST_CLR)
 
 828          * From the UFSHCI specification: "UTP Transfer Request List CLear
 
 829          * Register (UTRLCLR): This field is bit significant. Each bit
 
 830          * corresponds to a slot in the UTP Transfer Request List, where bit 0
 
 831          * corresponds to request slot 0. A bit in this field is set to ‘0’
 
 832          * by host software to indicate to the host controller that a transfer
 
 833          * request slot is cleared. The host controller
 
 834          * shall free up any resources associated to the request slot
 
 835          * immediately, and shall set the associated bit in UTRLDBR to ‘0’. The
 
 836          * host software indicates no change to request slots by setting the
 
 837          * associated bits in this field to ‘1’. Bits in this field shall only
 
 838          * be set ‘1’ or ‘0’ by host software when UTRLRSR is set to ‘1’."
 
 840         ufshcd_writel(hba, ~mask, REG_UTP_TRANSFER_REQ_LIST_CLEAR);
 
 844  * ufshcd_utmrl_clear - Clear a bit in UTMRLCLR register
 
 845  * @hba: per adapter instance
 
 846  * @pos: position of the bit to be cleared
 
 848 static inline void ufshcd_utmrl_clear(struct ufs_hba *hba, u32 pos)
 
 850         if (hba->quirks & UFSHCI_QUIRK_BROKEN_REQ_LIST_CLR)
 
 851                 ufshcd_writel(hba, (1 << pos), REG_UTP_TASK_REQ_LIST_CLEAR);
 
 853                 ufshcd_writel(hba, ~(1 << pos), REG_UTP_TASK_REQ_LIST_CLEAR);
 
 857  * ufshcd_get_lists_status - Check UCRDY, UTRLRDY and UTMRLRDY
 
 858  * @reg: Register value of host controller status
 
 860  * Returns integer, 0 on Success and positive value if failed
 
 862 static inline int ufshcd_get_lists_status(u32 reg)
 
 864         return !((reg & UFSHCD_STATUS_READY) == UFSHCD_STATUS_READY);
 
 868  * ufshcd_get_uic_cmd_result - Get the UIC command result
 
 869  * @hba: Pointer to adapter instance
 
 871  * This function gets the result of UIC command completion
 
 872  * Returns 0 on success, non zero value on error
 
 874 static inline int ufshcd_get_uic_cmd_result(struct ufs_hba *hba)
 
 876         return ufshcd_readl(hba, REG_UIC_COMMAND_ARG_2) &
 
 877                MASK_UIC_COMMAND_RESULT;
 
 881  * ufshcd_get_dme_attr_val - Get the value of attribute returned by UIC command
 
 882  * @hba: Pointer to adapter instance
 
 884  * This function gets UIC command argument3
 
 885  * Returns 0 on success, non zero value on error
 
 887 static inline u32 ufshcd_get_dme_attr_val(struct ufs_hba *hba)
 
 889         return ufshcd_readl(hba, REG_UIC_COMMAND_ARG_3);
 
 893  * ufshcd_get_req_rsp - returns the TR response transaction type
 
 894  * @ucd_rsp_ptr: pointer to response UPIU
 
 897 ufshcd_get_req_rsp(struct utp_upiu_rsp *ucd_rsp_ptr)
 
 899         return be32_to_cpu(ucd_rsp_ptr->header.dword_0) >> 24;
 
 903  * ufshcd_get_rsp_upiu_result - Get the result from response UPIU
 
 904  * @ucd_rsp_ptr: pointer to response UPIU
 
 906  * This function gets the response status and scsi_status from response UPIU
 
 907  * Returns the response result code.
 
 910 ufshcd_get_rsp_upiu_result(struct utp_upiu_rsp *ucd_rsp_ptr)
 
 912         return be32_to_cpu(ucd_rsp_ptr->header.dword_1) & MASK_RSP_UPIU_RESULT;
 
 916  * ufshcd_get_rsp_upiu_data_seg_len - Get the data segment length
 
 918  * @ucd_rsp_ptr: pointer to response UPIU
 
 920  * Return the data segment length.
 
 922 static inline unsigned int
 
 923 ufshcd_get_rsp_upiu_data_seg_len(struct utp_upiu_rsp *ucd_rsp_ptr)
 
 925         return be32_to_cpu(ucd_rsp_ptr->header.dword_2) &
 
 926                 MASK_RSP_UPIU_DATA_SEG_LEN;
 
 930  * ufshcd_is_exception_event - Check if the device raised an exception event
 
 931  * @ucd_rsp_ptr: pointer to response UPIU
 
 933  * The function checks if the device raised an exception event indicated in
 
 934  * the Device Information field of response UPIU.
 
 936  * Returns true if exception is raised, false otherwise.
 
 938 static inline bool ufshcd_is_exception_event(struct utp_upiu_rsp *ucd_rsp_ptr)
 
 940         return be32_to_cpu(ucd_rsp_ptr->header.dword_2) &
 
 941                         MASK_RSP_EXCEPTION_EVENT;
 
 945  * ufshcd_reset_intr_aggr - Reset interrupt aggregation values.
 
 946  * @hba: per adapter instance
 
 949 ufshcd_reset_intr_aggr(struct ufs_hba *hba)
 
 951         ufshcd_writel(hba, INT_AGGR_ENABLE |
 
 952                       INT_AGGR_COUNTER_AND_TIMER_RESET,
 
 953                       REG_UTP_TRANSFER_REQ_INT_AGG_CONTROL);
 
 957  * ufshcd_config_intr_aggr - Configure interrupt aggregation values.
 
 958  * @hba: per adapter instance
 
 959  * @cnt: Interrupt aggregation counter threshold
 
 960  * @tmout: Interrupt aggregation timeout value
 
 963 ufshcd_config_intr_aggr(struct ufs_hba *hba, u8 cnt, u8 tmout)
 
 965         ufshcd_writel(hba, INT_AGGR_ENABLE | INT_AGGR_PARAM_WRITE |
 
 966                       INT_AGGR_COUNTER_THLD_VAL(cnt) |
 
 967                       INT_AGGR_TIMEOUT_VAL(tmout),
 
 968                       REG_UTP_TRANSFER_REQ_INT_AGG_CONTROL);
 
 972  * ufshcd_disable_intr_aggr - Disables interrupt aggregation.
 
 973  * @hba: per adapter instance
 
 975 static inline void ufshcd_disable_intr_aggr(struct ufs_hba *hba)
 
 977         ufshcd_writel(hba, 0, REG_UTP_TRANSFER_REQ_INT_AGG_CONTROL);
 
 981  * ufshcd_enable_run_stop_reg - Enable run-stop registers,
 
 982  *                      When run-stop registers are set to 1, it indicates the
 
 983  *                      host controller that it can process the requests
 
 984  * @hba: per adapter instance
 
 986 static void ufshcd_enable_run_stop_reg(struct ufs_hba *hba)
 
 988         ufshcd_writel(hba, UTP_TASK_REQ_LIST_RUN_STOP_BIT,
 
 989                       REG_UTP_TASK_REQ_LIST_RUN_STOP);
 
 990         ufshcd_writel(hba, UTP_TRANSFER_REQ_LIST_RUN_STOP_BIT,
 
 991                       REG_UTP_TRANSFER_REQ_LIST_RUN_STOP);
 
 995  * ufshcd_hba_start - Start controller initialization sequence
 
 996  * @hba: per adapter instance
 
 998 static inline void ufshcd_hba_start(struct ufs_hba *hba)
 
1000         u32 val = CONTROLLER_ENABLE;
 
1002         if (ufshcd_crypto_enable(hba))
 
1003                 val |= CRYPTO_GENERAL_ENABLE;
 
1005         ufshcd_writel(hba, val, REG_CONTROLLER_ENABLE);
 
1009  * ufshcd_is_hba_active - Get controller state
 
1010  * @hba: per adapter instance
 
1012  * Returns true if and only if the controller is active.
 
1014 static inline bool ufshcd_is_hba_active(struct ufs_hba *hba)
 
1016         return ufshcd_readl(hba, REG_CONTROLLER_ENABLE) & CONTROLLER_ENABLE;
 
1019 u32 ufshcd_get_local_unipro_ver(struct ufs_hba *hba)
 
1021         /* HCI version 1.0 and 1.1 supports UniPro 1.41 */
 
1022         if (hba->ufs_version <= ufshci_version(1, 1))
 
1023                 return UFS_UNIPRO_VER_1_41;
 
1025                 return UFS_UNIPRO_VER_1_6;
 
1027 EXPORT_SYMBOL(ufshcd_get_local_unipro_ver);
 
1029 static bool ufshcd_is_unipro_pa_params_tuning_req(struct ufs_hba *hba)
 
1032          * If both host and device support UniPro ver1.6 or later, PA layer
 
1033          * parameters tuning happens during link startup itself.
 
1035          * We can manually tune PA layer parameters if either host or device
 
1036          * doesn't support UniPro ver 1.6 or later. But to keep manual tuning
 
1037          * logic simple, we will only do manual tuning if local unipro version
 
1038          * doesn't support ver1.6 or later.
 
1040         return ufshcd_get_local_unipro_ver(hba) < UFS_UNIPRO_VER_1_6;
 
1044  * ufshcd_set_clk_freq - set UFS controller clock frequencies
 
1045  * @hba: per adapter instance
 
1046  * @scale_up: If True, set max possible frequency othewise set low frequency
 
1048  * Returns 0 if successful
 
1049  * Returns < 0 for any other errors
 
1051 static int ufshcd_set_clk_freq(struct ufs_hba *hba, bool scale_up)
 
1054         struct ufs_clk_info *clki;
 
1055         struct list_head *head = &hba->clk_list_head;
 
1057         if (list_empty(head))
 
1060         list_for_each_entry(clki, head, list) {
 
1061                 if (!IS_ERR_OR_NULL(clki->clk)) {
 
1062                         if (scale_up && clki->max_freq) {
 
1063                                 if (clki->curr_freq == clki->max_freq)
 
1066                                 ret = clk_set_rate(clki->clk, clki->max_freq);
 
1068                                         dev_err(hba->dev, "%s: %s clk set rate(%dHz) failed, %d\n",
 
1069                                                 __func__, clki->name,
 
1070                                                 clki->max_freq, ret);
 
1073                                 trace_ufshcd_clk_scaling(dev_name(hba->dev),
 
1074                                                 "scaled up", clki->name,
 
1078                                 clki->curr_freq = clki->max_freq;
 
1080                         } else if (!scale_up && clki->min_freq) {
 
1081                                 if (clki->curr_freq == clki->min_freq)
 
1084                                 ret = clk_set_rate(clki->clk, clki->min_freq);
 
1086                                         dev_err(hba->dev, "%s: %s clk set rate(%dHz) failed, %d\n",
 
1087                                                 __func__, clki->name,
 
1088                                                 clki->min_freq, ret);
 
1091                                 trace_ufshcd_clk_scaling(dev_name(hba->dev),
 
1092                                                 "scaled down", clki->name,
 
1095                                 clki->curr_freq = clki->min_freq;
 
1098                 dev_dbg(hba->dev, "%s: clk: %s, rate: %lu\n", __func__,
 
1099                                 clki->name, clk_get_rate(clki->clk));
 
1107  * ufshcd_scale_clks - scale up or scale down UFS controller clocks
 
1108  * @hba: per adapter instance
 
1109  * @scale_up: True if scaling up and false if scaling down
 
1111  * Returns 0 if successful
 
1112  * Returns < 0 for any other errors
 
1114 static int ufshcd_scale_clks(struct ufs_hba *hba, bool scale_up)
 
1117         ktime_t start = ktime_get();
 
1119         ret = ufshcd_vops_clk_scale_notify(hba, scale_up, PRE_CHANGE);
 
1123         ret = ufshcd_set_clk_freq(hba, scale_up);
 
1127         ret = ufshcd_vops_clk_scale_notify(hba, scale_up, POST_CHANGE);
 
1129                 ufshcd_set_clk_freq(hba, !scale_up);
 
1132         trace_ufshcd_profile_clk_scaling(dev_name(hba->dev),
 
1133                         (scale_up ? "up" : "down"),
 
1134                         ktime_to_us(ktime_sub(ktime_get(), start)), ret);
 
1139  * ufshcd_is_devfreq_scaling_required - check if scaling is required or not
 
1140  * @hba: per adapter instance
 
1141  * @scale_up: True if scaling up and false if scaling down
 
1143  * Returns true if scaling is required, false otherwise.
 
1145 static bool ufshcd_is_devfreq_scaling_required(struct ufs_hba *hba,
 
1148         struct ufs_clk_info *clki;
 
1149         struct list_head *head = &hba->clk_list_head;
 
1151         if (list_empty(head))
 
1154         list_for_each_entry(clki, head, list) {
 
1155                 if (!IS_ERR_OR_NULL(clki->clk)) {
 
1156                         if (scale_up && clki->max_freq) {
 
1157                                 if (clki->curr_freq == clki->max_freq)
 
1160                         } else if (!scale_up && clki->min_freq) {
 
1161                                 if (clki->curr_freq == clki->min_freq)
 
1172  * Determine the number of pending commands by counting the bits in the SCSI
 
1173  * device budget maps. This approach has been selected because a bit is set in
 
1174  * the budget map before scsi_host_queue_ready() checks the host_self_blocked
 
1175  * flag. The host_self_blocked flag can be modified by calling
 
1176  * scsi_block_requests() or scsi_unblock_requests().
 
1178 static u32 ufshcd_pending_cmds(struct ufs_hba *hba)
 
1180         const struct scsi_device *sdev;
 
1183         lockdep_assert_held(hba->host->host_lock);
 
1184         __shost_for_each_device(sdev, hba->host)
 
1185                 pending += sbitmap_weight(&sdev->budget_map);
 
1191  * Wait until all pending SCSI commands and TMFs have finished or the timeout
 
1194  * Return: 0 upon success; -EBUSY upon timeout.
 
1196 static int ufshcd_wait_for_doorbell_clr(struct ufs_hba *hba,
 
1197                                         u64 wait_timeout_us)
 
1199         unsigned long flags;
 
1203         bool timeout = false, do_last_check = false;
 
1206         ufshcd_hold(hba, false);
 
1207         spin_lock_irqsave(hba->host->host_lock, flags);
 
1209          * Wait for all the outstanding tasks/transfer requests.
 
1210          * Verify by checking the doorbell registers are clear.
 
1212         start = ktime_get();
 
1214                 if (hba->ufshcd_state != UFSHCD_STATE_OPERATIONAL) {
 
1219                 tm_doorbell = ufshcd_readl(hba, REG_UTP_TASK_REQ_DOOR_BELL);
 
1220                 tr_pending = ufshcd_pending_cmds(hba);
 
1221                 if (!tm_doorbell && !tr_pending) {
 
1224                 } else if (do_last_check) {
 
1228                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1229                 io_schedule_timeout(msecs_to_jiffies(20));
 
1230                 if (ktime_to_us(ktime_sub(ktime_get(), start)) >
 
1234                          * We might have scheduled out for long time so make
 
1235                          * sure to check if doorbells are cleared by this time
 
1238                         do_last_check = true;
 
1240                 spin_lock_irqsave(hba->host->host_lock, flags);
 
1241         } while (tm_doorbell || tr_pending);
 
1245                         "%s: timedout waiting for doorbell to clear (tm=0x%x, tr=0x%x)\n",
 
1246                         __func__, tm_doorbell, tr_pending);
 
1250         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1251         ufshcd_release(hba);
 
1256  * ufshcd_scale_gear - scale up/down UFS gear
 
1257  * @hba: per adapter instance
 
1258  * @scale_up: True for scaling up gear and false for scaling down
 
1260  * Returns 0 for success,
 
1261  * Returns -EBUSY if scaling can't happen at this time
 
1262  * Returns non-zero for any other errors
 
1264 static int ufshcd_scale_gear(struct ufs_hba *hba, bool scale_up)
 
1267         struct ufs_pa_layer_attr new_pwr_info;
 
1270                 memcpy(&new_pwr_info, &hba->clk_scaling.saved_pwr_info,
 
1271                        sizeof(struct ufs_pa_layer_attr));
 
1273                 memcpy(&new_pwr_info, &hba->pwr_info,
 
1274                        sizeof(struct ufs_pa_layer_attr));
 
1276                 if (hba->pwr_info.gear_tx > hba->clk_scaling.min_gear ||
 
1277                     hba->pwr_info.gear_rx > hba->clk_scaling.min_gear) {
 
1278                         /* save the current power mode */
 
1279                         memcpy(&hba->clk_scaling.saved_pwr_info,
 
1281                                 sizeof(struct ufs_pa_layer_attr));
 
1283                         /* scale down gear */
 
1284                         new_pwr_info.gear_tx = hba->clk_scaling.min_gear;
 
1285                         new_pwr_info.gear_rx = hba->clk_scaling.min_gear;
 
1289         /* check if the power mode needs to be changed or not? */
 
1290         ret = ufshcd_config_pwr_mode(hba, &new_pwr_info);
 
1292                 dev_err(hba->dev, "%s: failed err %d, old gear: (tx %d rx %d), new gear: (tx %d rx %d)",
 
1294                         hba->pwr_info.gear_tx, hba->pwr_info.gear_rx,
 
1295                         new_pwr_info.gear_tx, new_pwr_info.gear_rx);
 
1301  * Wait until all pending SCSI commands and TMFs have finished or the timeout
 
1304  * Return: 0 upon success; -EBUSY upon timeout.
 
1306 static int ufshcd_clock_scaling_prepare(struct ufs_hba *hba, u64 timeout_us)
 
1310          * make sure that there are no outstanding requests when
 
1311          * clock scaling is in progress
 
1313         ufshcd_scsi_block_requests(hba);
 
1314         mutex_lock(&hba->wb_mutex);
 
1315         down_write(&hba->clk_scaling_lock);
 
1317         if (!hba->clk_scaling.is_allowed ||
 
1318             ufshcd_wait_for_doorbell_clr(hba, timeout_us)) {
 
1320                 up_write(&hba->clk_scaling_lock);
 
1321                 mutex_unlock(&hba->wb_mutex);
 
1322                 ufshcd_scsi_unblock_requests(hba);
 
1326         /* let's not get into low power until clock scaling is completed */
 
1327         ufshcd_hold(hba, false);
 
1333 static void ufshcd_clock_scaling_unprepare(struct ufs_hba *hba, int err, bool scale_up)
 
1335         up_write(&hba->clk_scaling_lock);
 
1337         /* Enable Write Booster if we have scaled up else disable it */
 
1338         if (ufshcd_enable_wb_if_scaling_up(hba) && !err)
 
1339                 ufshcd_wb_toggle(hba, scale_up);
 
1341         mutex_unlock(&hba->wb_mutex);
 
1343         ufshcd_scsi_unblock_requests(hba);
 
1344         ufshcd_release(hba);
 
1348  * ufshcd_devfreq_scale - scale up/down UFS clocks and gear
 
1349  * @hba: per adapter instance
 
1350  * @scale_up: True for scaling up and false for scalin down
 
1352  * Returns 0 for success,
 
1353  * Returns -EBUSY if scaling can't happen at this time
 
1354  * Returns non-zero for any other errors
 
1356 static int ufshcd_devfreq_scale(struct ufs_hba *hba, bool scale_up)
 
1360         ret = ufshcd_clock_scaling_prepare(hba, 1 * USEC_PER_SEC);
 
1364         /* scale down the gear before scaling down clocks */
 
1366                 ret = ufshcd_scale_gear(hba, false);
 
1371         ret = ufshcd_scale_clks(hba, scale_up);
 
1374                         ufshcd_scale_gear(hba, true);
 
1378         /* scale up the gear after scaling up clocks */
 
1380                 ret = ufshcd_scale_gear(hba, true);
 
1382                         ufshcd_scale_clks(hba, false);
 
1388         ufshcd_clock_scaling_unprepare(hba, ret, scale_up);
 
1392 static void ufshcd_clk_scaling_suspend_work(struct work_struct *work)
 
1394         struct ufs_hba *hba = container_of(work, struct ufs_hba,
 
1395                                            clk_scaling.suspend_work);
 
1396         unsigned long irq_flags;
 
1398         spin_lock_irqsave(hba->host->host_lock, irq_flags);
 
1399         if (hba->clk_scaling.active_reqs || hba->clk_scaling.is_suspended) {
 
1400                 spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1403         hba->clk_scaling.is_suspended = true;
 
1404         spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1406         __ufshcd_suspend_clkscaling(hba);
 
1409 static void ufshcd_clk_scaling_resume_work(struct work_struct *work)
 
1411         struct ufs_hba *hba = container_of(work, struct ufs_hba,
 
1412                                            clk_scaling.resume_work);
 
1413         unsigned long irq_flags;
 
1415         spin_lock_irqsave(hba->host->host_lock, irq_flags);
 
1416         if (!hba->clk_scaling.is_suspended) {
 
1417                 spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1420         hba->clk_scaling.is_suspended = false;
 
1421         spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1423         devfreq_resume_device(hba->devfreq);
 
1426 static int ufshcd_devfreq_target(struct device *dev,
 
1427                                 unsigned long *freq, u32 flags)
 
1430         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1432         bool scale_up, sched_clk_scaling_suspend_work = false;
 
1433         struct list_head *clk_list = &hba->clk_list_head;
 
1434         struct ufs_clk_info *clki;
 
1435         unsigned long irq_flags;
 
1437         if (!ufshcd_is_clkscaling_supported(hba))
 
1440         clki = list_first_entry(&hba->clk_list_head, struct ufs_clk_info, list);
 
1441         /* Override with the closest supported frequency */
 
1442         *freq = (unsigned long) clk_round_rate(clki->clk, *freq);
 
1443         spin_lock_irqsave(hba->host->host_lock, irq_flags);
 
1444         if (ufshcd_eh_in_progress(hba)) {
 
1445                 spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1449         if (!hba->clk_scaling.active_reqs)
 
1450                 sched_clk_scaling_suspend_work = true;
 
1452         if (list_empty(clk_list)) {
 
1453                 spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1457         /* Decide based on the rounded-off frequency and update */
 
1458         scale_up = *freq == clki->max_freq;
 
1460                 *freq = clki->min_freq;
 
1461         /* Update the frequency */
 
1462         if (!ufshcd_is_devfreq_scaling_required(hba, scale_up)) {
 
1463                 spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1465                 goto out; /* no state change required */
 
1467         spin_unlock_irqrestore(hba->host->host_lock, irq_flags);
 
1469         start = ktime_get();
 
1470         ret = ufshcd_devfreq_scale(hba, scale_up);
 
1472         trace_ufshcd_profile_clk_scaling(dev_name(hba->dev),
 
1473                 (scale_up ? "up" : "down"),
 
1474                 ktime_to_us(ktime_sub(ktime_get(), start)), ret);
 
1477         if (sched_clk_scaling_suspend_work)
 
1478                 queue_work(hba->clk_scaling.workq,
 
1479                            &hba->clk_scaling.suspend_work);
 
1484 static int ufshcd_devfreq_get_dev_status(struct device *dev,
 
1485                 struct devfreq_dev_status *stat)
 
1487         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1488         struct ufs_clk_scaling *scaling = &hba->clk_scaling;
 
1489         unsigned long flags;
 
1490         struct list_head *clk_list = &hba->clk_list_head;
 
1491         struct ufs_clk_info *clki;
 
1494         if (!ufshcd_is_clkscaling_supported(hba))
 
1497         memset(stat, 0, sizeof(*stat));
 
1499         spin_lock_irqsave(hba->host->host_lock, flags);
 
1500         curr_t = ktime_get();
 
1501         if (!scaling->window_start_t)
 
1504         clki = list_first_entry(clk_list, struct ufs_clk_info, list);
 
1506          * If current frequency is 0, then the ondemand governor considers
 
1507          * there's no initial frequency set. And it always requests to set
 
1508          * to max. frequency.
 
1510         stat->current_frequency = clki->curr_freq;
 
1511         if (scaling->is_busy_started)
 
1512                 scaling->tot_busy_t += ktime_us_delta(curr_t,
 
1513                                 scaling->busy_start_t);
 
1515         stat->total_time = ktime_us_delta(curr_t, scaling->window_start_t);
 
1516         stat->busy_time = scaling->tot_busy_t;
 
1518         scaling->window_start_t = curr_t;
 
1519         scaling->tot_busy_t = 0;
 
1521         if (scaling->active_reqs) {
 
1522                 scaling->busy_start_t = curr_t;
 
1523                 scaling->is_busy_started = true;
 
1525                 scaling->busy_start_t = 0;
 
1526                 scaling->is_busy_started = false;
 
1528         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1532 static int ufshcd_devfreq_init(struct ufs_hba *hba)
 
1534         struct list_head *clk_list = &hba->clk_list_head;
 
1535         struct ufs_clk_info *clki;
 
1536         struct devfreq *devfreq;
 
1539         /* Skip devfreq if we don't have any clocks in the list */
 
1540         if (list_empty(clk_list))
 
1543         clki = list_first_entry(clk_list, struct ufs_clk_info, list);
 
1544         dev_pm_opp_add(hba->dev, clki->min_freq, 0);
 
1545         dev_pm_opp_add(hba->dev, clki->max_freq, 0);
 
1547         ufshcd_vops_config_scaling_param(hba, &hba->vps->devfreq_profile,
 
1548                                          &hba->vps->ondemand_data);
 
1549         devfreq = devfreq_add_device(hba->dev,
 
1550                         &hba->vps->devfreq_profile,
 
1551                         DEVFREQ_GOV_SIMPLE_ONDEMAND,
 
1552                         &hba->vps->ondemand_data);
 
1553         if (IS_ERR(devfreq)) {
 
1554                 ret = PTR_ERR(devfreq);
 
1555                 dev_err(hba->dev, "Unable to register with devfreq %d\n", ret);
 
1557                 dev_pm_opp_remove(hba->dev, clki->min_freq);
 
1558                 dev_pm_opp_remove(hba->dev, clki->max_freq);
 
1562         hba->devfreq = devfreq;
 
1567 static void ufshcd_devfreq_remove(struct ufs_hba *hba)
 
1569         struct list_head *clk_list = &hba->clk_list_head;
 
1570         struct ufs_clk_info *clki;
 
1575         devfreq_remove_device(hba->devfreq);
 
1576         hba->devfreq = NULL;
 
1578         clki = list_first_entry(clk_list, struct ufs_clk_info, list);
 
1579         dev_pm_opp_remove(hba->dev, clki->min_freq);
 
1580         dev_pm_opp_remove(hba->dev, clki->max_freq);
 
1583 static void __ufshcd_suspend_clkscaling(struct ufs_hba *hba)
 
1585         unsigned long flags;
 
1587         devfreq_suspend_device(hba->devfreq);
 
1588         spin_lock_irqsave(hba->host->host_lock, flags);
 
1589         hba->clk_scaling.window_start_t = 0;
 
1590         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1593 static void ufshcd_suspend_clkscaling(struct ufs_hba *hba)
 
1595         unsigned long flags;
 
1596         bool suspend = false;
 
1598         cancel_work_sync(&hba->clk_scaling.suspend_work);
 
1599         cancel_work_sync(&hba->clk_scaling.resume_work);
 
1601         spin_lock_irqsave(hba->host->host_lock, flags);
 
1602         if (!hba->clk_scaling.is_suspended) {
 
1604                 hba->clk_scaling.is_suspended = true;
 
1606         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1609                 __ufshcd_suspend_clkscaling(hba);
 
1612 static void ufshcd_resume_clkscaling(struct ufs_hba *hba)
 
1614         unsigned long flags;
 
1615         bool resume = false;
 
1617         spin_lock_irqsave(hba->host->host_lock, flags);
 
1618         if (hba->clk_scaling.is_suspended) {
 
1620                 hba->clk_scaling.is_suspended = false;
 
1622         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1625                 devfreq_resume_device(hba->devfreq);
 
1628 static ssize_t ufshcd_clkscale_enable_show(struct device *dev,
 
1629                 struct device_attribute *attr, char *buf)
 
1631         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1633         return sysfs_emit(buf, "%d\n", hba->clk_scaling.is_enabled);
 
1636 static ssize_t ufshcd_clkscale_enable_store(struct device *dev,
 
1637                 struct device_attribute *attr, const char *buf, size_t count)
 
1639         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1643         if (kstrtou32(buf, 0, &value))
 
1646         down(&hba->host_sem);
 
1647         if (!ufshcd_is_user_access_allowed(hba)) {
 
1653         if (value == hba->clk_scaling.is_enabled)
 
1656         ufshcd_rpm_get_sync(hba);
 
1657         ufshcd_hold(hba, false);
 
1659         hba->clk_scaling.is_enabled = value;
 
1662                 ufshcd_resume_clkscaling(hba);
 
1664                 ufshcd_suspend_clkscaling(hba);
 
1665                 err = ufshcd_devfreq_scale(hba, true);
 
1667                         dev_err(hba->dev, "%s: failed to scale clocks up %d\n",
 
1671         ufshcd_release(hba);
 
1672         ufshcd_rpm_put_sync(hba);
 
1675         return err ? err : count;
 
1678 static void ufshcd_init_clk_scaling_sysfs(struct ufs_hba *hba)
 
1680         hba->clk_scaling.enable_attr.show = ufshcd_clkscale_enable_show;
 
1681         hba->clk_scaling.enable_attr.store = ufshcd_clkscale_enable_store;
 
1682         sysfs_attr_init(&hba->clk_scaling.enable_attr.attr);
 
1683         hba->clk_scaling.enable_attr.attr.name = "clkscale_enable";
 
1684         hba->clk_scaling.enable_attr.attr.mode = 0644;
 
1685         if (device_create_file(hba->dev, &hba->clk_scaling.enable_attr))
 
1686                 dev_err(hba->dev, "Failed to create sysfs for clkscale_enable\n");
 
1689 static void ufshcd_remove_clk_scaling_sysfs(struct ufs_hba *hba)
 
1691         if (hba->clk_scaling.enable_attr.attr.name)
 
1692                 device_remove_file(hba->dev, &hba->clk_scaling.enable_attr);
 
1695 static void ufshcd_init_clk_scaling(struct ufs_hba *hba)
 
1697         char wq_name[sizeof("ufs_clkscaling_00")];
 
1699         if (!ufshcd_is_clkscaling_supported(hba))
 
1702         if (!hba->clk_scaling.min_gear)
 
1703                 hba->clk_scaling.min_gear = UFS_HS_G1;
 
1705         INIT_WORK(&hba->clk_scaling.suspend_work,
 
1706                   ufshcd_clk_scaling_suspend_work);
 
1707         INIT_WORK(&hba->clk_scaling.resume_work,
 
1708                   ufshcd_clk_scaling_resume_work);
 
1710         snprintf(wq_name, sizeof(wq_name), "ufs_clkscaling_%d",
 
1711                  hba->host->host_no);
 
1712         hba->clk_scaling.workq = create_singlethread_workqueue(wq_name);
 
1714         hba->clk_scaling.is_initialized = true;
 
1717 static void ufshcd_exit_clk_scaling(struct ufs_hba *hba)
 
1719         if (!hba->clk_scaling.is_initialized)
 
1722         ufshcd_remove_clk_scaling_sysfs(hba);
 
1723         destroy_workqueue(hba->clk_scaling.workq);
 
1724         ufshcd_devfreq_remove(hba);
 
1725         hba->clk_scaling.is_initialized = false;
 
1728 static void ufshcd_ungate_work(struct work_struct *work)
 
1731         unsigned long flags;
 
1732         struct ufs_hba *hba = container_of(work, struct ufs_hba,
 
1733                         clk_gating.ungate_work);
 
1735         cancel_delayed_work_sync(&hba->clk_gating.gate_work);
 
1737         spin_lock_irqsave(hba->host->host_lock, flags);
 
1738         if (hba->clk_gating.state == CLKS_ON) {
 
1739                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1743         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1744         ufshcd_hba_vreg_set_hpm(hba);
 
1745         ufshcd_setup_clocks(hba, true);
 
1747         ufshcd_enable_irq(hba);
 
1749         /* Exit from hibern8 */
 
1750         if (ufshcd_can_hibern8_during_gating(hba)) {
 
1751                 /* Prevent gating in this path */
 
1752                 hba->clk_gating.is_suspended = true;
 
1753                 if (ufshcd_is_link_hibern8(hba)) {
 
1754                         ret = ufshcd_uic_hibern8_exit(hba);
 
1756                                 dev_err(hba->dev, "%s: hibern8 exit failed %d\n",
 
1759                                 ufshcd_set_link_active(hba);
 
1761                 hba->clk_gating.is_suspended = false;
 
1764         ufshcd_scsi_unblock_requests(hba);
 
1768  * ufshcd_hold - Enable clocks that were gated earlier due to ufshcd_release.
 
1769  * Also, exit from hibern8 mode and set the link as active.
 
1770  * @hba: per adapter instance
 
1771  * @async: This indicates whether caller should ungate clocks asynchronously.
 
1773 int ufshcd_hold(struct ufs_hba *hba, bool async)
 
1777         unsigned long flags;
 
1779         if (!ufshcd_is_clkgating_allowed(hba) ||
 
1780             !hba->clk_gating.is_initialized)
 
1782         spin_lock_irqsave(hba->host->host_lock, flags);
 
1783         hba->clk_gating.active_reqs++;
 
1786         switch (hba->clk_gating.state) {
 
1789                  * Wait for the ungate work to complete if in progress.
 
1790                  * Though the clocks may be in ON state, the link could
 
1791                  * still be in hibner8 state if hibern8 is allowed
 
1792                  * during clock gating.
 
1793                  * Make sure we exit hibern8 state also in addition to
 
1796                 if (ufshcd_can_hibern8_during_gating(hba) &&
 
1797                     ufshcd_is_link_hibern8(hba)) {
 
1800                                 hba->clk_gating.active_reqs--;
 
1803                         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1804                         flush_result = flush_work(&hba->clk_gating.ungate_work);
 
1805                         if (hba->clk_gating.is_suspended && !flush_result)
 
1807                         spin_lock_irqsave(hba->host->host_lock, flags);
 
1812                 if (cancel_delayed_work(&hba->clk_gating.gate_work)) {
 
1813                         hba->clk_gating.state = CLKS_ON;
 
1814                         trace_ufshcd_clk_gating(dev_name(hba->dev),
 
1815                                                 hba->clk_gating.state);
 
1819                  * If we are here, it means gating work is either done or
 
1820                  * currently running. Hence, fall through to cancel gating
 
1821                  * work and to enable clocks.
 
1825                 hba->clk_gating.state = REQ_CLKS_ON;
 
1826                 trace_ufshcd_clk_gating(dev_name(hba->dev),
 
1827                                         hba->clk_gating.state);
 
1828                 if (queue_work(hba->clk_gating.clk_gating_workq,
 
1829                                &hba->clk_gating.ungate_work))
 
1830                         ufshcd_scsi_block_requests(hba);
 
1832                  * fall through to check if we should wait for this
 
1833                  * work to be done or not.
 
1839                         hba->clk_gating.active_reqs--;
 
1843                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1844                 flush_work(&hba->clk_gating.ungate_work);
 
1845                 /* Make sure state is CLKS_ON before returning */
 
1846                 spin_lock_irqsave(hba->host->host_lock, flags);
 
1849                 dev_err(hba->dev, "%s: clk gating is in invalid state %d\n",
 
1850                                 __func__, hba->clk_gating.state);
 
1853         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1857 EXPORT_SYMBOL_GPL(ufshcd_hold);
 
1859 static void ufshcd_gate_work(struct work_struct *work)
 
1861         struct ufs_hba *hba = container_of(work, struct ufs_hba,
 
1862                         clk_gating.gate_work.work);
 
1863         unsigned long flags;
 
1866         spin_lock_irqsave(hba->host->host_lock, flags);
 
1868          * In case you are here to cancel this work the gating state
 
1869          * would be marked as REQ_CLKS_ON. In this case save time by
 
1870          * skipping the gating work and exit after changing the clock
 
1873         if (hba->clk_gating.is_suspended ||
 
1874                 (hba->clk_gating.state != REQ_CLKS_OFF)) {
 
1875                 hba->clk_gating.state = CLKS_ON;
 
1876                 trace_ufshcd_clk_gating(dev_name(hba->dev),
 
1877                                         hba->clk_gating.state);
 
1881         if (hba->clk_gating.active_reqs
 
1882                 || hba->ufshcd_state != UFSHCD_STATE_OPERATIONAL
 
1883                 || hba->outstanding_reqs || hba->outstanding_tasks
 
1884                 || hba->active_uic_cmd || hba->uic_async_done)
 
1887         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1889         /* put the link into hibern8 mode before turning off clocks */
 
1890         if (ufshcd_can_hibern8_during_gating(hba)) {
 
1891                 ret = ufshcd_uic_hibern8_enter(hba);
 
1893                         hba->clk_gating.state = CLKS_ON;
 
1894                         dev_err(hba->dev, "%s: hibern8 enter failed %d\n",
 
1896                         trace_ufshcd_clk_gating(dev_name(hba->dev),
 
1897                                                 hba->clk_gating.state);
 
1900                 ufshcd_set_link_hibern8(hba);
 
1903         ufshcd_disable_irq(hba);
 
1905         ufshcd_setup_clocks(hba, false);
 
1907         /* Put the host controller in low power mode if possible */
 
1908         ufshcd_hba_vreg_set_lpm(hba);
 
1910          * In case you are here to cancel this work the gating state
 
1911          * would be marked as REQ_CLKS_ON. In this case keep the state
 
1912          * as REQ_CLKS_ON which would anyway imply that clocks are off
 
1913          * and a request to turn them on is pending. By doing this way,
 
1914          * we keep the state machine in tact and this would ultimately
 
1915          * prevent from doing cancel work multiple times when there are
 
1916          * new requests arriving before the current cancel work is done.
 
1918         spin_lock_irqsave(hba->host->host_lock, flags);
 
1919         if (hba->clk_gating.state == REQ_CLKS_OFF) {
 
1920                 hba->clk_gating.state = CLKS_OFF;
 
1921                 trace_ufshcd_clk_gating(dev_name(hba->dev),
 
1922                                         hba->clk_gating.state);
 
1925         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1930 /* host lock must be held before calling this variant */
 
1931 static void __ufshcd_release(struct ufs_hba *hba)
 
1933         if (!ufshcd_is_clkgating_allowed(hba))
 
1936         hba->clk_gating.active_reqs--;
 
1938         if (hba->clk_gating.active_reqs || hba->clk_gating.is_suspended ||
 
1939             hba->ufshcd_state != UFSHCD_STATE_OPERATIONAL ||
 
1940             hba->outstanding_tasks || !hba->clk_gating.is_initialized ||
 
1941             hba->active_uic_cmd || hba->uic_async_done ||
 
1942             hba->clk_gating.state == CLKS_OFF)
 
1945         hba->clk_gating.state = REQ_CLKS_OFF;
 
1946         trace_ufshcd_clk_gating(dev_name(hba->dev), hba->clk_gating.state);
 
1947         queue_delayed_work(hba->clk_gating.clk_gating_workq,
 
1948                            &hba->clk_gating.gate_work,
 
1949                            msecs_to_jiffies(hba->clk_gating.delay_ms));
 
1952 void ufshcd_release(struct ufs_hba *hba)
 
1954         unsigned long flags;
 
1956         spin_lock_irqsave(hba->host->host_lock, flags);
 
1957         __ufshcd_release(hba);
 
1958         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1960 EXPORT_SYMBOL_GPL(ufshcd_release);
 
1962 static ssize_t ufshcd_clkgate_delay_show(struct device *dev,
 
1963                 struct device_attribute *attr, char *buf)
 
1965         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1967         return sysfs_emit(buf, "%lu\n", hba->clk_gating.delay_ms);
 
1970 void ufshcd_clkgate_delay_set(struct device *dev, unsigned long value)
 
1972         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1973         unsigned long flags;
 
1975         spin_lock_irqsave(hba->host->host_lock, flags);
 
1976         hba->clk_gating.delay_ms = value;
 
1977         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
1979 EXPORT_SYMBOL_GPL(ufshcd_clkgate_delay_set);
 
1981 static ssize_t ufshcd_clkgate_delay_store(struct device *dev,
 
1982                 struct device_attribute *attr, const char *buf, size_t count)
 
1984         unsigned long value;
 
1986         if (kstrtoul(buf, 0, &value))
 
1989         ufshcd_clkgate_delay_set(dev, value);
 
1993 static ssize_t ufshcd_clkgate_enable_show(struct device *dev,
 
1994                 struct device_attribute *attr, char *buf)
 
1996         struct ufs_hba *hba = dev_get_drvdata(dev);
 
1998         return sysfs_emit(buf, "%d\n", hba->clk_gating.is_enabled);
 
2001 static ssize_t ufshcd_clkgate_enable_store(struct device *dev,
 
2002                 struct device_attribute *attr, const char *buf, size_t count)
 
2004         struct ufs_hba *hba = dev_get_drvdata(dev);
 
2005         unsigned long flags;
 
2008         if (kstrtou32(buf, 0, &value))
 
2013         spin_lock_irqsave(hba->host->host_lock, flags);
 
2014         if (value == hba->clk_gating.is_enabled)
 
2018                 __ufshcd_release(hba);
 
2020                 hba->clk_gating.active_reqs++;
 
2022         hba->clk_gating.is_enabled = value;
 
2024         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2028 static void ufshcd_init_clk_gating_sysfs(struct ufs_hba *hba)
 
2030         hba->clk_gating.delay_attr.show = ufshcd_clkgate_delay_show;
 
2031         hba->clk_gating.delay_attr.store = ufshcd_clkgate_delay_store;
 
2032         sysfs_attr_init(&hba->clk_gating.delay_attr.attr);
 
2033         hba->clk_gating.delay_attr.attr.name = "clkgate_delay_ms";
 
2034         hba->clk_gating.delay_attr.attr.mode = 0644;
 
2035         if (device_create_file(hba->dev, &hba->clk_gating.delay_attr))
 
2036                 dev_err(hba->dev, "Failed to create sysfs for clkgate_delay\n");
 
2038         hba->clk_gating.enable_attr.show = ufshcd_clkgate_enable_show;
 
2039         hba->clk_gating.enable_attr.store = ufshcd_clkgate_enable_store;
 
2040         sysfs_attr_init(&hba->clk_gating.enable_attr.attr);
 
2041         hba->clk_gating.enable_attr.attr.name = "clkgate_enable";
 
2042         hba->clk_gating.enable_attr.attr.mode = 0644;
 
2043         if (device_create_file(hba->dev, &hba->clk_gating.enable_attr))
 
2044                 dev_err(hba->dev, "Failed to create sysfs for clkgate_enable\n");
 
2047 static void ufshcd_remove_clk_gating_sysfs(struct ufs_hba *hba)
 
2049         if (hba->clk_gating.delay_attr.attr.name)
 
2050                 device_remove_file(hba->dev, &hba->clk_gating.delay_attr);
 
2051         if (hba->clk_gating.enable_attr.attr.name)
 
2052                 device_remove_file(hba->dev, &hba->clk_gating.enable_attr);
 
2055 static void ufshcd_init_clk_gating(struct ufs_hba *hba)
 
2057         char wq_name[sizeof("ufs_clk_gating_00")];
 
2059         if (!ufshcd_is_clkgating_allowed(hba))
 
2062         hba->clk_gating.state = CLKS_ON;
 
2064         hba->clk_gating.delay_ms = 150;
 
2065         INIT_DELAYED_WORK(&hba->clk_gating.gate_work, ufshcd_gate_work);
 
2066         INIT_WORK(&hba->clk_gating.ungate_work, ufshcd_ungate_work);
 
2068         snprintf(wq_name, ARRAY_SIZE(wq_name), "ufs_clk_gating_%d",
 
2069                  hba->host->host_no);
 
2070         hba->clk_gating.clk_gating_workq = alloc_ordered_workqueue(wq_name,
 
2071                                         WQ_MEM_RECLAIM | WQ_HIGHPRI);
 
2073         ufshcd_init_clk_gating_sysfs(hba);
 
2075         hba->clk_gating.is_enabled = true;
 
2076         hba->clk_gating.is_initialized = true;
 
2079 static void ufshcd_exit_clk_gating(struct ufs_hba *hba)
 
2081         if (!hba->clk_gating.is_initialized)
 
2084         ufshcd_remove_clk_gating_sysfs(hba);
 
2086         /* Ungate the clock if necessary. */
 
2087         ufshcd_hold(hba, false);
 
2088         hba->clk_gating.is_initialized = false;
 
2089         ufshcd_release(hba);
 
2091         destroy_workqueue(hba->clk_gating.clk_gating_workq);
 
2094 static void ufshcd_clk_scaling_start_busy(struct ufs_hba *hba)
 
2096         bool queue_resume_work = false;
 
2097         ktime_t curr_t = ktime_get();
 
2098         unsigned long flags;
 
2100         if (!ufshcd_is_clkscaling_supported(hba))
 
2103         spin_lock_irqsave(hba->host->host_lock, flags);
 
2104         if (!hba->clk_scaling.active_reqs++)
 
2105                 queue_resume_work = true;
 
2107         if (!hba->clk_scaling.is_enabled || hba->pm_op_in_progress) {
 
2108                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2112         if (queue_resume_work)
 
2113                 queue_work(hba->clk_scaling.workq,
 
2114                            &hba->clk_scaling.resume_work);
 
2116         if (!hba->clk_scaling.window_start_t) {
 
2117                 hba->clk_scaling.window_start_t = curr_t;
 
2118                 hba->clk_scaling.tot_busy_t = 0;
 
2119                 hba->clk_scaling.is_busy_started = false;
 
2122         if (!hba->clk_scaling.is_busy_started) {
 
2123                 hba->clk_scaling.busy_start_t = curr_t;
 
2124                 hba->clk_scaling.is_busy_started = true;
 
2126         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2129 static void ufshcd_clk_scaling_update_busy(struct ufs_hba *hba)
 
2131         struct ufs_clk_scaling *scaling = &hba->clk_scaling;
 
2132         unsigned long flags;
 
2134         if (!ufshcd_is_clkscaling_supported(hba))
 
2137         spin_lock_irqsave(hba->host->host_lock, flags);
 
2138         hba->clk_scaling.active_reqs--;
 
2139         if (!scaling->active_reqs && scaling->is_busy_started) {
 
2140                 scaling->tot_busy_t += ktime_to_us(ktime_sub(ktime_get(),
 
2141                                         scaling->busy_start_t));
 
2142                 scaling->busy_start_t = 0;
 
2143                 scaling->is_busy_started = false;
 
2145         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2148 static inline int ufshcd_monitor_opcode2dir(u8 opcode)
 
2150         if (opcode == READ_6 || opcode == READ_10 || opcode == READ_16)
 
2152         else if (opcode == WRITE_6 || opcode == WRITE_10 || opcode == WRITE_16)
 
2158 static inline bool ufshcd_should_inform_monitor(struct ufs_hba *hba,
 
2159                                                 struct ufshcd_lrb *lrbp)
 
2161         const struct ufs_hba_monitor *m = &hba->monitor;
 
2163         return (m->enabled && lrbp && lrbp->cmd &&
 
2164                 (!m->chunk_size || m->chunk_size == lrbp->cmd->sdb.length) &&
 
2165                 ktime_before(hba->monitor.enabled_ts, lrbp->issue_time_stamp));
 
2168 static void ufshcd_start_monitor(struct ufs_hba *hba,
 
2169                                  const struct ufshcd_lrb *lrbp)
 
2171         int dir = ufshcd_monitor_opcode2dir(*lrbp->cmd->cmnd);
 
2172         unsigned long flags;
 
2174         spin_lock_irqsave(hba->host->host_lock, flags);
 
2175         if (dir >= 0 && hba->monitor.nr_queued[dir]++ == 0)
 
2176                 hba->monitor.busy_start_ts[dir] = ktime_get();
 
2177         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2180 static void ufshcd_update_monitor(struct ufs_hba *hba, const struct ufshcd_lrb *lrbp)
 
2182         int dir = ufshcd_monitor_opcode2dir(*lrbp->cmd->cmnd);
 
2183         unsigned long flags;
 
2185         spin_lock_irqsave(hba->host->host_lock, flags);
 
2186         if (dir >= 0 && hba->monitor.nr_queued[dir] > 0) {
 
2187                 const struct request *req = scsi_cmd_to_rq(lrbp->cmd);
 
2188                 struct ufs_hba_monitor *m = &hba->monitor;
 
2189                 ktime_t now, inc, lat;
 
2191                 now = lrbp->compl_time_stamp;
 
2192                 inc = ktime_sub(now, m->busy_start_ts[dir]);
 
2193                 m->total_busy[dir] = ktime_add(m->total_busy[dir], inc);
 
2194                 m->nr_sec_rw[dir] += blk_rq_sectors(req);
 
2196                 /* Update latencies */
 
2198                 lat = ktime_sub(now, lrbp->issue_time_stamp);
 
2199                 m->lat_sum[dir] += lat;
 
2200                 if (m->lat_max[dir] < lat || !m->lat_max[dir])
 
2201                         m->lat_max[dir] = lat;
 
2202                 if (m->lat_min[dir] > lat || !m->lat_min[dir])
 
2203                         m->lat_min[dir] = lat;
 
2205                 m->nr_queued[dir]--;
 
2206                 /* Push forward the busy start of monitor */
 
2207                 m->busy_start_ts[dir] = now;
 
2209         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2213  * ufshcd_send_command - Send SCSI or device management commands
 
2214  * @hba: per adapter instance
 
2215  * @task_tag: Task tag of the command
 
2216  * @hwq: pointer to hardware queue instance
 
2219 void ufshcd_send_command(struct ufs_hba *hba, unsigned int task_tag,
 
2220                          struct ufs_hw_queue *hwq)
 
2222         struct ufshcd_lrb *lrbp = &hba->lrb[task_tag];
 
2223         unsigned long flags;
 
2225         lrbp->issue_time_stamp = ktime_get();
 
2226         lrbp->issue_time_stamp_local_clock = local_clock();
 
2227         lrbp->compl_time_stamp = ktime_set(0, 0);
 
2228         lrbp->compl_time_stamp_local_clock = 0;
 
2229         ufshcd_add_command_trace(hba, task_tag, UFS_CMD_SEND);
 
2230         ufshcd_clk_scaling_start_busy(hba);
 
2231         if (unlikely(ufshcd_should_inform_monitor(hba, lrbp)))
 
2232                 ufshcd_start_monitor(hba, lrbp);
 
2234         if (is_mcq_enabled(hba)) {
 
2235                 int utrd_size = sizeof(struct utp_transfer_req_desc);
 
2236                 struct utp_transfer_req_desc *src = lrbp->utr_descriptor_ptr;
 
2237                 struct utp_transfer_req_desc *dest = hwq->sqe_base_addr + hwq->sq_tail_slot;
 
2239                 spin_lock(&hwq->sq_lock);
 
2240                 memcpy(dest, src, utrd_size);
 
2241                 ufshcd_inc_sq_tail(hwq);
 
2242                 spin_unlock(&hwq->sq_lock);
 
2244                 spin_lock_irqsave(&hba->outstanding_lock, flags);
 
2245                 if (hba->vops && hba->vops->setup_xfer_req)
 
2246                         hba->vops->setup_xfer_req(hba, lrbp->task_tag,
 
2248                 __set_bit(lrbp->task_tag, &hba->outstanding_reqs);
 
2249                 ufshcd_writel(hba, 1 << lrbp->task_tag,
 
2250                               REG_UTP_TRANSFER_REQ_DOOR_BELL);
 
2251                 spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
2256  * ufshcd_copy_sense_data - Copy sense data in case of check condition
 
2257  * @lrbp: pointer to local reference block
 
2259 static inline void ufshcd_copy_sense_data(struct ufshcd_lrb *lrbp)
 
2261         u8 *const sense_buffer = lrbp->cmd->sense_buffer;
 
2265             ufshcd_get_rsp_upiu_data_seg_len(lrbp->ucd_rsp_ptr)) {
 
2268                 len = be16_to_cpu(lrbp->ucd_rsp_ptr->sr.sense_data_len);
 
2269                 len_to_copy = min_t(int, UFS_SENSE_SIZE, len);
 
2271                 memcpy(sense_buffer, lrbp->ucd_rsp_ptr->sr.sense_data,
 
2277  * ufshcd_copy_query_response() - Copy the Query Response and the data
 
2279  * @hba: per adapter instance
 
2280  * @lrbp: pointer to local reference block
 
2283 int ufshcd_copy_query_response(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
 
2285         struct ufs_query_res *query_res = &hba->dev_cmd.query.response;
 
2287         memcpy(&query_res->upiu_res, &lrbp->ucd_rsp_ptr->qr, QUERY_OSF_SIZE);
 
2289         /* Get the descriptor */
 
2290         if (hba->dev_cmd.query.descriptor &&
 
2291             lrbp->ucd_rsp_ptr->qr.opcode == UPIU_QUERY_OPCODE_READ_DESC) {
 
2292                 u8 *descp = (u8 *)lrbp->ucd_rsp_ptr +
 
2293                                 GENERAL_UPIU_REQUEST_SIZE;
 
2297                 /* data segment length */
 
2298                 resp_len = be32_to_cpu(lrbp->ucd_rsp_ptr->header.dword_2) &
 
2299                                                 MASK_QUERY_DATA_SEG_LEN;
 
2300                 buf_len = be16_to_cpu(
 
2301                                 hba->dev_cmd.query.request.upiu_req.length);
 
2302                 if (likely(buf_len >= resp_len)) {
 
2303                         memcpy(hba->dev_cmd.query.descriptor, descp, resp_len);
 
2306                                  "%s: rsp size %d is bigger than buffer size %d",
 
2307                                  __func__, resp_len, buf_len);
 
2316  * ufshcd_hba_capabilities - Read controller capabilities
 
2317  * @hba: per adapter instance
 
2319  * Return: 0 on success, negative on error.
 
2321 static inline int ufshcd_hba_capabilities(struct ufs_hba *hba)
 
2325         hba->capabilities = ufshcd_readl(hba, REG_CONTROLLER_CAPABILITIES);
 
2326         if (hba->quirks & UFSHCD_QUIRK_BROKEN_64BIT_ADDRESS)
 
2327                 hba->capabilities &= ~MASK_64_ADDRESSING_SUPPORT;
 
2329         /* nutrs and nutmrs are 0 based values */
 
2330         hba->nutrs = (hba->capabilities & MASK_TRANSFER_REQUESTS_SLOTS) + 1;
 
2332         ((hba->capabilities & MASK_TASK_MANAGEMENT_REQUEST_SLOTS) >> 16) + 1;
 
2333         hba->reserved_slot = hba->nutrs - 1;
 
2335         /* Read crypto capabilities */
 
2336         err = ufshcd_hba_init_crypto_capabilities(hba);
 
2338                 dev_err(hba->dev, "crypto setup failed\n");
 
2340         hba->mcq_sup = FIELD_GET(MASK_MCQ_SUPPORT, hba->capabilities);
 
2344         hba->mcq_capabilities = ufshcd_readl(hba, REG_MCQCAP);
 
2345         hba->ext_iid_sup = FIELD_GET(MASK_EXT_IID_SUPPORT,
 
2346                                      hba->mcq_capabilities);
 
2352  * ufshcd_ready_for_uic_cmd - Check if controller is ready
 
2353  *                            to accept UIC commands
 
2354  * @hba: per adapter instance
 
2355  * Return true on success, else false
 
2357 static inline bool ufshcd_ready_for_uic_cmd(struct ufs_hba *hba)
 
2359         return ufshcd_readl(hba, REG_CONTROLLER_STATUS) & UIC_COMMAND_READY;
 
2363  * ufshcd_get_upmcrs - Get the power mode change request status
 
2364  * @hba: Pointer to adapter instance
 
2366  * This function gets the UPMCRS field of HCS register
 
2367  * Returns value of UPMCRS field
 
2369 static inline u8 ufshcd_get_upmcrs(struct ufs_hba *hba)
 
2371         return (ufshcd_readl(hba, REG_CONTROLLER_STATUS) >> 8) & 0x7;
 
2375  * ufshcd_dispatch_uic_cmd - Dispatch an UIC command to the Unipro layer
 
2376  * @hba: per adapter instance
 
2377  * @uic_cmd: UIC command
 
2380 ufshcd_dispatch_uic_cmd(struct ufs_hba *hba, struct uic_command *uic_cmd)
 
2382         lockdep_assert_held(&hba->uic_cmd_mutex);
 
2384         WARN_ON(hba->active_uic_cmd);
 
2386         hba->active_uic_cmd = uic_cmd;
 
2389         ufshcd_writel(hba, uic_cmd->argument1, REG_UIC_COMMAND_ARG_1);
 
2390         ufshcd_writel(hba, uic_cmd->argument2, REG_UIC_COMMAND_ARG_2);
 
2391         ufshcd_writel(hba, uic_cmd->argument3, REG_UIC_COMMAND_ARG_3);
 
2393         ufshcd_add_uic_command_trace(hba, uic_cmd, UFS_CMD_SEND);
 
2396         ufshcd_writel(hba, uic_cmd->command & COMMAND_OPCODE_MASK,
 
2401  * ufshcd_wait_for_uic_cmd - Wait for completion of an UIC command
 
2402  * @hba: per adapter instance
 
2403  * @uic_cmd: UIC command
 
2405  * Returns 0 only if success.
 
2408 ufshcd_wait_for_uic_cmd(struct ufs_hba *hba, struct uic_command *uic_cmd)
 
2411         unsigned long flags;
 
2413         lockdep_assert_held(&hba->uic_cmd_mutex);
 
2415         if (wait_for_completion_timeout(&uic_cmd->done,
 
2416                                         msecs_to_jiffies(UIC_CMD_TIMEOUT))) {
 
2417                 ret = uic_cmd->argument2 & MASK_UIC_COMMAND_RESULT;
 
2421                         "uic cmd 0x%x with arg3 0x%x completion timeout\n",
 
2422                         uic_cmd->command, uic_cmd->argument3);
 
2424                 if (!uic_cmd->cmd_active) {
 
2425                         dev_err(hba->dev, "%s: UIC cmd has been completed, return the result\n",
 
2427                         ret = uic_cmd->argument2 & MASK_UIC_COMMAND_RESULT;
 
2431         spin_lock_irqsave(hba->host->host_lock, flags);
 
2432         hba->active_uic_cmd = NULL;
 
2433         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2439  * __ufshcd_send_uic_cmd - Send UIC commands and retrieve the result
 
2440  * @hba: per adapter instance
 
2441  * @uic_cmd: UIC command
 
2442  * @completion: initialize the completion only if this is set to true
 
2444  * Returns 0 only if success.
 
2447 __ufshcd_send_uic_cmd(struct ufs_hba *hba, struct uic_command *uic_cmd,
 
2450         lockdep_assert_held(&hba->uic_cmd_mutex);
 
2451         lockdep_assert_held(hba->host->host_lock);
 
2453         if (!ufshcd_ready_for_uic_cmd(hba)) {
 
2455                         "Controller not ready to accept UIC commands\n");
 
2460                 init_completion(&uic_cmd->done);
 
2462         uic_cmd->cmd_active = 1;
 
2463         ufshcd_dispatch_uic_cmd(hba, uic_cmd);
 
2469  * ufshcd_send_uic_cmd - Send UIC commands and retrieve the result
 
2470  * @hba: per adapter instance
 
2471  * @uic_cmd: UIC command
 
2473  * Returns 0 only if success.
 
2475 int ufshcd_send_uic_cmd(struct ufs_hba *hba, struct uic_command *uic_cmd)
 
2478         unsigned long flags;
 
2480         if (hba->quirks & UFSHCD_QUIRK_BROKEN_UIC_CMD)
 
2483         ufshcd_hold(hba, false);
 
2484         mutex_lock(&hba->uic_cmd_mutex);
 
2485         ufshcd_add_delay_before_dme_cmd(hba);
 
2487         spin_lock_irqsave(hba->host->host_lock, flags);
 
2488         ret = __ufshcd_send_uic_cmd(hba, uic_cmd, true);
 
2489         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2491                 ret = ufshcd_wait_for_uic_cmd(hba, uic_cmd);
 
2493         mutex_unlock(&hba->uic_cmd_mutex);
 
2495         ufshcd_release(hba);
 
2500  * ufshcd_sgl_to_prdt - SG list to PRTD (Physical Region Description Table, 4DW format)
 
2501  * @hba:        per-adapter instance
 
2502  * @lrbp:       pointer to local reference block
 
2503  * @sg_entries: The number of sg lists actually used
 
2504  * @sg_list:    Pointer to SG list
 
2506 static void ufshcd_sgl_to_prdt(struct ufs_hba *hba, struct ufshcd_lrb *lrbp, int sg_entries,
 
2507                                struct scatterlist *sg_list)
 
2509         struct ufshcd_sg_entry *prd;
 
2510         struct scatterlist *sg;
 
2515                 if (hba->quirks & UFSHCD_QUIRK_PRDT_BYTE_GRAN)
 
2516                         lrbp->utr_descriptor_ptr->prd_table_length =
 
2517                                 cpu_to_le16(sg_entries * ufshcd_sg_entry_size(hba));
 
2519                         lrbp->utr_descriptor_ptr->prd_table_length = cpu_to_le16(sg_entries);
 
2521                 prd = lrbp->ucd_prdt_ptr;
 
2523                 for_each_sg(sg_list, sg, sg_entries, i) {
 
2524                         const unsigned int len = sg_dma_len(sg);
 
2527                          * From the UFSHCI spec: "Data Byte Count (DBC): A '0'
 
2528                          * based value that indicates the length, in bytes, of
 
2529                          * the data block. A maximum of length of 256KB may
 
2530                          * exist for any entry. Bits 1:0 of this field shall be
 
2531                          * 11b to indicate Dword granularity. A value of '3'
 
2532                          * indicates 4 bytes, '7' indicates 8 bytes, etc."
 
2534                         WARN_ONCE(len > 256 * 1024, "len = %#x\n", len);
 
2535                         prd->size = cpu_to_le32(len - 1);
 
2536                         prd->addr = cpu_to_le64(sg->dma_address);
 
2538                         prd = (void *)prd + ufshcd_sg_entry_size(hba);
 
2541                 lrbp->utr_descriptor_ptr->prd_table_length = 0;
 
2546  * ufshcd_map_sg - Map scatter-gather list to prdt
 
2547  * @hba: per adapter instance
 
2548  * @lrbp: pointer to local reference block
 
2550  * Returns 0 in case of success, non-zero value in case of failure
 
2552 static int ufshcd_map_sg(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
 
2554         struct scsi_cmnd *cmd = lrbp->cmd;
 
2555         int sg_segments = scsi_dma_map(cmd);
 
2557         if (sg_segments < 0)
 
2560         ufshcd_sgl_to_prdt(hba, lrbp, sg_segments, scsi_sglist(cmd));
 
2566  * ufshcd_enable_intr - enable interrupts
 
2567  * @hba: per adapter instance
 
2568  * @intrs: interrupt bits
 
2570 static void ufshcd_enable_intr(struct ufs_hba *hba, u32 intrs)
 
2572         u32 set = ufshcd_readl(hba, REG_INTERRUPT_ENABLE);
 
2574         if (hba->ufs_version == ufshci_version(1, 0)) {
 
2576                 rw = set & INTERRUPT_MASK_RW_VER_10;
 
2577                 set = rw | ((set ^ intrs) & intrs);
 
2582         ufshcd_writel(hba, set, REG_INTERRUPT_ENABLE);
 
2586  * ufshcd_disable_intr - disable interrupts
 
2587  * @hba: per adapter instance
 
2588  * @intrs: interrupt bits
 
2590 static void ufshcd_disable_intr(struct ufs_hba *hba, u32 intrs)
 
2592         u32 set = ufshcd_readl(hba, REG_INTERRUPT_ENABLE);
 
2594         if (hba->ufs_version == ufshci_version(1, 0)) {
 
2596                 rw = (set & INTERRUPT_MASK_RW_VER_10) &
 
2597                         ~(intrs & INTERRUPT_MASK_RW_VER_10);
 
2598                 set = rw | ((set & intrs) & ~INTERRUPT_MASK_RW_VER_10);
 
2604         ufshcd_writel(hba, set, REG_INTERRUPT_ENABLE);
 
2608  * ufshcd_prepare_req_desc_hdr - Fill UTP Transfer request descriptor header according to request
 
2609  * descriptor according to request
 
2610  * @lrbp: pointer to local reference block
 
2611  * @upiu_flags: flags required in the header
 
2612  * @cmd_dir: requests data direction
 
2613  * @ehs_length: Total EHS Length (in 32‐bytes units of all Extra Header Segments)
 
2615 static void ufshcd_prepare_req_desc_hdr(struct ufshcd_lrb *lrbp, u8 *upiu_flags,
 
2616                                         enum dma_data_direction cmd_dir, int ehs_length)
 
2618         struct utp_transfer_req_desc *req_desc = lrbp->utr_descriptor_ptr;
 
2624         if (cmd_dir == DMA_FROM_DEVICE) {
 
2625                 data_direction = UTP_DEVICE_TO_HOST;
 
2626                 *upiu_flags = UPIU_CMD_FLAGS_READ;
 
2627         } else if (cmd_dir == DMA_TO_DEVICE) {
 
2628                 data_direction = UTP_HOST_TO_DEVICE;
 
2629                 *upiu_flags = UPIU_CMD_FLAGS_WRITE;
 
2631                 data_direction = UTP_NO_DATA_TRANSFER;
 
2632                 *upiu_flags = UPIU_CMD_FLAGS_NONE;
 
2635         dword_0 = data_direction | (lrbp->command_type << UPIU_COMMAND_TYPE_OFFSET) |
 
2638                 dword_0 |= UTP_REQ_DESC_INT_CMD;
 
2640         /* Prepare crypto related dwords */
 
2641         ufshcd_prepare_req_desc_hdr_crypto(lrbp, &dword_0, &dword_1, &dword_3);
 
2643         /* Transfer request descriptor header fields */
 
2644         req_desc->header.dword_0 = cpu_to_le32(dword_0);
 
2645         req_desc->header.dword_1 = cpu_to_le32(dword_1);
 
2647          * assigning invalid value for command status. Controller
 
2648          * updates OCS on command completion, with the command
 
2651         req_desc->header.dword_2 =
 
2652                 cpu_to_le32(OCS_INVALID_COMMAND_STATUS);
 
2653         req_desc->header.dword_3 = cpu_to_le32(dword_3);
 
2655         req_desc->prd_table_length = 0;
 
2659  * ufshcd_prepare_utp_scsi_cmd_upiu() - fills the utp_transfer_req_desc,
 
2661  * @lrbp: local reference block pointer
 
2662  * @upiu_flags: flags
 
2665 void ufshcd_prepare_utp_scsi_cmd_upiu(struct ufshcd_lrb *lrbp, u8 upiu_flags)
 
2667         struct scsi_cmnd *cmd = lrbp->cmd;
 
2668         struct utp_upiu_req *ucd_req_ptr = lrbp->ucd_req_ptr;
 
2669         unsigned short cdb_len;
 
2671         /* command descriptor fields */
 
2672         ucd_req_ptr->header.dword_0 = UPIU_HEADER_DWORD(
 
2673                                 UPIU_TRANSACTION_COMMAND, upiu_flags,
 
2674                                 lrbp->lun, lrbp->task_tag);
 
2675         ucd_req_ptr->header.dword_1 = UPIU_HEADER_DWORD(
 
2676                                 UPIU_COMMAND_SET_TYPE_SCSI, 0, 0, 0);
 
2678         /* Total EHS length and Data segment length will be zero */
 
2679         ucd_req_ptr->header.dword_2 = 0;
 
2681         ucd_req_ptr->sc.exp_data_transfer_len = cpu_to_be32(cmd->sdb.length);
 
2683         cdb_len = min_t(unsigned short, cmd->cmd_len, UFS_CDB_SIZE);
 
2684         memset(ucd_req_ptr->sc.cdb, 0, UFS_CDB_SIZE);
 
2685         memcpy(ucd_req_ptr->sc.cdb, cmd->cmnd, cdb_len);
 
2687         memset(lrbp->ucd_rsp_ptr, 0, sizeof(struct utp_upiu_rsp));
 
2691  * ufshcd_prepare_utp_query_req_upiu() - fill the utp_transfer_req_desc for query request
 
2693  * @lrbp: local reference block pointer
 
2694  * @upiu_flags: flags
 
2696 static void ufshcd_prepare_utp_query_req_upiu(struct ufs_hba *hba,
 
2697                                 struct ufshcd_lrb *lrbp, u8 upiu_flags)
 
2699         struct utp_upiu_req *ucd_req_ptr = lrbp->ucd_req_ptr;
 
2700         struct ufs_query *query = &hba->dev_cmd.query;
 
2701         u16 len = be16_to_cpu(query->request.upiu_req.length);
 
2703         /* Query request header */
 
2704         ucd_req_ptr->header.dword_0 = UPIU_HEADER_DWORD(
 
2705                         UPIU_TRANSACTION_QUERY_REQ, upiu_flags,
 
2706                         lrbp->lun, lrbp->task_tag);
 
2707         ucd_req_ptr->header.dword_1 = UPIU_HEADER_DWORD(
 
2708                         0, query->request.query_func, 0, 0);
 
2710         /* Data segment length only need for WRITE_DESC */
 
2711         if (query->request.upiu_req.opcode == UPIU_QUERY_OPCODE_WRITE_DESC)
 
2712                 ucd_req_ptr->header.dword_2 =
 
2713                         UPIU_HEADER_DWORD(0, 0, (len >> 8), (u8)len);
 
2715                 ucd_req_ptr->header.dword_2 = 0;
 
2717         /* Copy the Query Request buffer as is */
 
2718         memcpy(&ucd_req_ptr->qr, &query->request.upiu_req,
 
2721         /* Copy the Descriptor */
 
2722         if (query->request.upiu_req.opcode == UPIU_QUERY_OPCODE_WRITE_DESC)
 
2723                 memcpy(ucd_req_ptr + 1, query->descriptor, len);
 
2725         memset(lrbp->ucd_rsp_ptr, 0, sizeof(struct utp_upiu_rsp));
 
2728 static inline void ufshcd_prepare_utp_nop_upiu(struct ufshcd_lrb *lrbp)
 
2730         struct utp_upiu_req *ucd_req_ptr = lrbp->ucd_req_ptr;
 
2732         memset(ucd_req_ptr, 0, sizeof(struct utp_upiu_req));
 
2734         /* command descriptor fields */
 
2735         ucd_req_ptr->header.dword_0 =
 
2737                         UPIU_TRANSACTION_NOP_OUT, 0, 0, lrbp->task_tag);
 
2738         /* clear rest of the fields of basic header */
 
2739         ucd_req_ptr->header.dword_1 = 0;
 
2740         ucd_req_ptr->header.dword_2 = 0;
 
2742         memset(lrbp->ucd_rsp_ptr, 0, sizeof(struct utp_upiu_rsp));
 
2746  * ufshcd_compose_devman_upiu - UFS Protocol Information Unit(UPIU)
 
2747  *                           for Device Management Purposes
 
2748  * @hba: per adapter instance
 
2749  * @lrbp: pointer to local reference block
 
2751 static int ufshcd_compose_devman_upiu(struct ufs_hba *hba,
 
2752                                       struct ufshcd_lrb *lrbp)
 
2757         if (hba->ufs_version <= ufshci_version(1, 1))
 
2758                 lrbp->command_type = UTP_CMD_TYPE_DEV_MANAGE;
 
2760                 lrbp->command_type = UTP_CMD_TYPE_UFS_STORAGE;
 
2762         ufshcd_prepare_req_desc_hdr(lrbp, &upiu_flags, DMA_NONE, 0);
 
2763         if (hba->dev_cmd.type == DEV_CMD_TYPE_QUERY)
 
2764                 ufshcd_prepare_utp_query_req_upiu(hba, lrbp, upiu_flags);
 
2765         else if (hba->dev_cmd.type == DEV_CMD_TYPE_NOP)
 
2766                 ufshcd_prepare_utp_nop_upiu(lrbp);
 
2774  * ufshcd_comp_scsi_upiu - UFS Protocol Information Unit(UPIU)
 
2776  * @hba: per adapter instance
 
2777  * @lrbp: pointer to local reference block
 
2779 static int ufshcd_comp_scsi_upiu(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
 
2784         if (hba->ufs_version <= ufshci_version(1, 1))
 
2785                 lrbp->command_type = UTP_CMD_TYPE_SCSI;
 
2787                 lrbp->command_type = UTP_CMD_TYPE_UFS_STORAGE;
 
2789         if (likely(lrbp->cmd)) {
 
2790                 ufshcd_prepare_req_desc_hdr(lrbp, &upiu_flags, lrbp->cmd->sc_data_direction, 0);
 
2791                 ufshcd_prepare_utp_scsi_cmd_upiu(lrbp, upiu_flags);
 
2800  * ufshcd_upiu_wlun_to_scsi_wlun - maps UPIU W-LUN id to SCSI W-LUN ID
 
2801  * @upiu_wlun_id: UPIU W-LUN id
 
2803  * Returns SCSI W-LUN id
 
2805 static inline u16 ufshcd_upiu_wlun_to_scsi_wlun(u8 upiu_wlun_id)
 
2807         return (upiu_wlun_id & ~UFS_UPIU_WLUN_ID) | SCSI_W_LUN_BASE;
 
2810 static inline bool is_device_wlun(struct scsi_device *sdev)
 
2813                 ufshcd_upiu_wlun_to_scsi_wlun(UFS_UPIU_UFS_DEVICE_WLUN);
 
2817  * Associate the UFS controller queue with the default and poll HCTX types.
 
2818  * Initialize the mq_map[] arrays.
 
2820 static void ufshcd_map_queues(struct Scsi_Host *shost)
 
2822         struct ufs_hba *hba = shost_priv(shost);
 
2823         int i, queue_offset = 0;
 
2825         if (!is_mcq_supported(hba)) {
 
2826                 hba->nr_queues[HCTX_TYPE_DEFAULT] = 1;
 
2827                 hba->nr_queues[HCTX_TYPE_READ] = 0;
 
2828                 hba->nr_queues[HCTX_TYPE_POLL] = 1;
 
2829                 hba->nr_hw_queues = 1;
 
2832         for (i = 0; i < shost->nr_maps; i++) {
 
2833                 struct blk_mq_queue_map *map = &shost->tag_set.map[i];
 
2835                 map->nr_queues = hba->nr_queues[i];
 
2836                 if (!map->nr_queues)
 
2838                 map->queue_offset = queue_offset;
 
2839                 if (i == HCTX_TYPE_POLL && !is_mcq_supported(hba))
 
2840                         map->queue_offset = 0;
 
2842                 blk_mq_map_queues(map);
 
2843                 queue_offset += map->nr_queues;
 
2847 static void ufshcd_init_lrb(struct ufs_hba *hba, struct ufshcd_lrb *lrb, int i)
 
2849         struct utp_transfer_cmd_desc *cmd_descp = (void *)hba->ucdl_base_addr +
 
2850                 i * sizeof_utp_transfer_cmd_desc(hba);
 
2851         struct utp_transfer_req_desc *utrdlp = hba->utrdl_base_addr;
 
2852         dma_addr_t cmd_desc_element_addr = hba->ucdl_dma_addr +
 
2853                 i * sizeof_utp_transfer_cmd_desc(hba);
 
2854         u16 response_offset = offsetof(struct utp_transfer_cmd_desc,
 
2856         u16 prdt_offset = offsetof(struct utp_transfer_cmd_desc, prd_table);
 
2858         lrb->utr_descriptor_ptr = utrdlp + i;
 
2859         lrb->utrd_dma_addr = hba->utrdl_dma_addr +
 
2860                 i * sizeof(struct utp_transfer_req_desc);
 
2861         lrb->ucd_req_ptr = (struct utp_upiu_req *)cmd_descp->command_upiu;
 
2862         lrb->ucd_req_dma_addr = cmd_desc_element_addr;
 
2863         lrb->ucd_rsp_ptr = (struct utp_upiu_rsp *)cmd_descp->response_upiu;
 
2864         lrb->ucd_rsp_dma_addr = cmd_desc_element_addr + response_offset;
 
2865         lrb->ucd_prdt_ptr = (struct ufshcd_sg_entry *)cmd_descp->prd_table;
 
2866         lrb->ucd_prdt_dma_addr = cmd_desc_element_addr + prdt_offset;
 
2870  * ufshcd_queuecommand - main entry point for SCSI requests
 
2871  * @host: SCSI host pointer
 
2872  * @cmd: command from SCSI Midlayer
 
2874  * Returns 0 for success, non-zero in case of failure
 
2876 static int ufshcd_queuecommand(struct Scsi_Host *host, struct scsi_cmnd *cmd)
 
2878         struct ufs_hba *hba = shost_priv(host);
 
2879         int tag = scsi_cmd_to_rq(cmd)->tag;
 
2880         struct ufshcd_lrb *lrbp;
 
2882         struct ufs_hw_queue *hwq = NULL;
 
2884         WARN_ONCE(tag < 0 || tag >= hba->nutrs, "Invalid tag %d\n", tag);
 
2887          * Allows the UFS error handler to wait for prior ufshcd_queuecommand()
 
2892         switch (hba->ufshcd_state) {
 
2893         case UFSHCD_STATE_OPERATIONAL:
 
2895         case UFSHCD_STATE_EH_SCHEDULED_NON_FATAL:
 
2897                  * SCSI error handler can call ->queuecommand() while UFS error
 
2898                  * handler is in progress. Error interrupts could change the
 
2899                  * state from UFSHCD_STATE_RESET to
 
2900                  * UFSHCD_STATE_EH_SCHEDULED_NON_FATAL. Prevent requests
 
2901                  * being issued in that case.
 
2903                 if (ufshcd_eh_in_progress(hba)) {
 
2904                         err = SCSI_MLQUEUE_HOST_BUSY;
 
2908         case UFSHCD_STATE_EH_SCHEDULED_FATAL:
 
2910                  * pm_runtime_get_sync() is used at error handling preparation
 
2911                  * stage. If a scsi cmd, e.g. the SSU cmd, is sent from hba's
 
2912                  * PM ops, it can never be finished if we let SCSI layer keep
 
2913                  * retrying it, which gets err handler stuck forever. Neither
 
2914                  * can we let the scsi cmd pass through, because UFS is in bad
 
2915                  * state, the scsi cmd may eventually time out, which will get
 
2916                  * err handler blocked for too long. So, just fail the scsi cmd
 
2917                  * sent from PM ops, err handler can recover PM error anyways.
 
2919                 if (hba->pm_op_in_progress) {
 
2920                         hba->force_reset = true;
 
2921                         set_host_byte(cmd, DID_BAD_TARGET);
 
2926         case UFSHCD_STATE_RESET:
 
2927                 err = SCSI_MLQUEUE_HOST_BUSY;
 
2929         case UFSHCD_STATE_ERROR:
 
2930                 set_host_byte(cmd, DID_ERROR);
 
2935         hba->req_abort_count = 0;
 
2937         err = ufshcd_hold(hba, true);
 
2939                 err = SCSI_MLQUEUE_HOST_BUSY;
 
2942         WARN_ON(ufshcd_is_clkgating_allowed(hba) &&
 
2943                 (hba->clk_gating.state != CLKS_ON));
 
2945         lrbp = &hba->lrb[tag];
 
2948         lrbp->task_tag = tag;
 
2949         lrbp->lun = ufshcd_scsi_to_upiu_lun(cmd->device->lun);
 
2950         lrbp->intr_cmd = !ufshcd_is_intr_aggr_allowed(hba);
 
2952         ufshcd_prepare_lrbp_crypto(scsi_cmd_to_rq(cmd), lrbp);
 
2954         lrbp->req_abort_skip = false;
 
2956         ufshpb_prep(hba, lrbp);
 
2958         ufshcd_comp_scsi_upiu(hba, lrbp);
 
2960         err = ufshcd_map_sg(hba, lrbp);
 
2963                 ufshcd_release(hba);
 
2967         if (is_mcq_enabled(hba))
 
2968                 hwq = ufshcd_mcq_req_to_hwq(hba, scsi_cmd_to_rq(cmd));
 
2970         ufshcd_send_command(hba, tag, hwq);
 
2975         if (ufs_trigger_eh()) {
 
2976                 unsigned long flags;
 
2978                 spin_lock_irqsave(hba->host->host_lock, flags);
 
2979                 ufshcd_schedule_eh_work(hba);
 
2980                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
2986 static int ufshcd_compose_dev_cmd(struct ufs_hba *hba,
 
2987                 struct ufshcd_lrb *lrbp, enum dev_cmd_type cmd_type, int tag)
 
2990         lrbp->task_tag = tag;
 
2991         lrbp->lun = 0; /* device management cmd is not specific to any LUN */
 
2992         lrbp->intr_cmd = true; /* No interrupt aggregation */
 
2993         ufshcd_prepare_lrbp_crypto(NULL, lrbp);
 
2994         hba->dev_cmd.type = cmd_type;
 
2996         return ufshcd_compose_devman_upiu(hba, lrbp);
 
3000  * Check with the block layer if the command is inflight
 
3001  * @cmd: command to check.
 
3003  * Returns true if command is inflight; false if not.
 
3005 bool ufshcd_cmd_inflight(struct scsi_cmnd *cmd)
 
3012         rq = scsi_cmd_to_rq(cmd);
 
3013         if (!blk_mq_request_started(rq))
 
3020  * Clear the pending command in the controller and wait until
 
3021  * the controller confirms that the command has been cleared.
 
3022  * @hba: per adapter instance
 
3023  * @task_tag: The tag number of the command to be cleared.
 
3025 static int ufshcd_clear_cmd(struct ufs_hba *hba, u32 task_tag)
 
3027         u32 mask = 1U << task_tag;
 
3028         unsigned long flags;
 
3031         if (is_mcq_enabled(hba)) {
 
3033                  * MCQ mode. Clean up the MCQ resources similar to
 
3034                  * what the ufshcd_utrl_clear() does for SDB mode.
 
3036                 err = ufshcd_mcq_sq_cleanup(hba, task_tag);
 
3038                         dev_err(hba->dev, "%s: failed tag=%d. err=%d\n",
 
3039                                 __func__, task_tag, err);
 
3045         /* clear outstanding transaction before retry */
 
3046         spin_lock_irqsave(hba->host->host_lock, flags);
 
3047         ufshcd_utrl_clear(hba, mask);
 
3048         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
3051          * wait for h/w to clear corresponding bit in door-bell.
 
3052          * max. wait is 1 sec.
 
3054         return ufshcd_wait_for_register(hba, REG_UTP_TRANSFER_REQ_DOOR_BELL,
 
3055                                         mask, ~mask, 1000, 1000);
 
3059 ufshcd_check_query_response(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
 
3061         struct ufs_query_res *query_res = &hba->dev_cmd.query.response;
 
3063         /* Get the UPIU response */
 
3064         query_res->response = ufshcd_get_rsp_upiu_result(lrbp->ucd_rsp_ptr) >>
 
3065                                 UPIU_RSP_CODE_OFFSET;
 
3066         return query_res->response;
 
3070  * ufshcd_dev_cmd_completion() - handles device management command responses
 
3071  * @hba: per adapter instance
 
3072  * @lrbp: pointer to local reference block
 
3075 ufshcd_dev_cmd_completion(struct ufs_hba *hba, struct ufshcd_lrb *lrbp)
 
3080         hba->ufs_stats.last_hibern8_exit_tstamp = ktime_set(0, 0);
 
3081         resp = ufshcd_get_req_rsp(lrbp->ucd_rsp_ptr);
 
3084         case UPIU_TRANSACTION_NOP_IN:
 
3085                 if (hba->dev_cmd.type != DEV_CMD_TYPE_NOP) {
 
3087                         dev_err(hba->dev, "%s: unexpected response %x\n",
 
3091         case UPIU_TRANSACTION_QUERY_RSP:
 
3092                 err = ufshcd_check_query_response(hba, lrbp);
 
3094                         err = ufshcd_copy_query_response(hba, lrbp);
 
3096         case UPIU_TRANSACTION_REJECT_UPIU:
 
3097                 /* TODO: handle Reject UPIU Response */
 
3099                 dev_err(hba->dev, "%s: Reject UPIU not fully implemented\n",
 
3102         case UPIU_TRANSACTION_RESPONSE:
 
3103                 if (hba->dev_cmd.type != DEV_CMD_TYPE_RPMB) {
 
3105                         dev_err(hba->dev, "%s: unexpected response %x\n", __func__, resp);
 
3110                 dev_err(hba->dev, "%s: Invalid device management cmd response: %x\n",
 
3118 static int ufshcd_wait_for_dev_cmd(struct ufs_hba *hba,
 
3119                 struct ufshcd_lrb *lrbp, int max_timeout)
 
3121         unsigned long time_left = msecs_to_jiffies(max_timeout);
 
3122         unsigned long flags;
 
3127         time_left = wait_for_completion_timeout(hba->dev_cmd.complete,
 
3130         if (likely(time_left)) {
 
3132                  * The completion handler called complete() and the caller of
 
3133                  * this function still owns the @lrbp tag so the code below does
 
3134                  * not trigger any race conditions.
 
3136                 hba->dev_cmd.complete = NULL;
 
3137                 err = ufshcd_get_tr_ocs(lrbp, hba->dev_cmd.cqe);
 
3139                         err = ufshcd_dev_cmd_completion(hba, lrbp);
 
3142                 dev_dbg(hba->dev, "%s: dev_cmd request timedout, tag %d\n",
 
3143                         __func__, lrbp->task_tag);
 
3144                 if (ufshcd_clear_cmd(hba, lrbp->task_tag) == 0) {
 
3145                         /* successfully cleared the command, retry if needed */
 
3148                          * Since clearing the command succeeded we also need to
 
3149                          * clear the task tag bit from the outstanding_reqs
 
3152                         spin_lock_irqsave(&hba->outstanding_lock, flags);
 
3153                         pending = test_bit(lrbp->task_tag,
 
3154                                            &hba->outstanding_reqs);
 
3156                                 hba->dev_cmd.complete = NULL;
 
3157                                 __clear_bit(lrbp->task_tag,
 
3158                                             &hba->outstanding_reqs);
 
3160                         spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
3164                                  * The completion handler ran while we tried to
 
3165                                  * clear the command.
 
3171                         dev_err(hba->dev, "%s: failed to clear tag %d\n",
 
3172                                 __func__, lrbp->task_tag);
 
3174                         spin_lock_irqsave(&hba->outstanding_lock, flags);
 
3175                         pending = test_bit(lrbp->task_tag,
 
3176                                            &hba->outstanding_reqs);
 
3178                                 hba->dev_cmd.complete = NULL;
 
3179                         spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
3183                                  * The completion handler ran while we tried to
 
3184                                  * clear the command.
 
3196  * ufshcd_exec_dev_cmd - API for sending device management requests
 
3198  * @cmd_type: specifies the type (NOP, Query...)
 
3199  * @timeout: timeout in milliseconds
 
3201  * NOTE: Since there is only one available tag for device management commands,
 
3202  * it is expected you hold the hba->dev_cmd.lock mutex.
 
3204 static int ufshcd_exec_dev_cmd(struct ufs_hba *hba,
 
3205                 enum dev_cmd_type cmd_type, int timeout)
 
3207         DECLARE_COMPLETION_ONSTACK(wait);
 
3208         const u32 tag = hba->reserved_slot;
 
3209         struct ufshcd_lrb *lrbp;
 
3212         /* Protects use of hba->reserved_slot. */
 
3213         lockdep_assert_held(&hba->dev_cmd.lock);
 
3215         down_read(&hba->clk_scaling_lock);
 
3217         lrbp = &hba->lrb[tag];
 
3219         err = ufshcd_compose_dev_cmd(hba, lrbp, cmd_type, tag);
 
3223         hba->dev_cmd.complete = &wait;
 
3224         hba->dev_cmd.cqe = NULL;
 
3226         ufshcd_add_query_upiu_trace(hba, UFS_QUERY_SEND, lrbp->ucd_req_ptr);
 
3228         ufshcd_send_command(hba, tag, hba->dev_cmd_queue);
 
3229         err = ufshcd_wait_for_dev_cmd(hba, lrbp, timeout);
 
3230         ufshcd_add_query_upiu_trace(hba, err ? UFS_QUERY_ERR : UFS_QUERY_COMP,
 
3231                                     (struct utp_upiu_req *)lrbp->ucd_rsp_ptr);
 
3234         up_read(&hba->clk_scaling_lock);
 
3239  * ufshcd_init_query() - init the query response and request parameters
 
3240  * @hba: per-adapter instance
 
3241  * @request: address of the request pointer to be initialized
 
3242  * @response: address of the response pointer to be initialized
 
3243  * @opcode: operation to perform
 
3244  * @idn: flag idn to access
 
3245  * @index: LU number to access
 
3246  * @selector: query/flag/descriptor further identification
 
3248 static inline void ufshcd_init_query(struct ufs_hba *hba,
 
3249                 struct ufs_query_req **request, struct ufs_query_res **response,
 
3250                 enum query_opcode opcode, u8 idn, u8 index, u8 selector)
 
3252         *request = &hba->dev_cmd.query.request;
 
3253         *response = &hba->dev_cmd.query.response;
 
3254         memset(*request, 0, sizeof(struct ufs_query_req));
 
3255         memset(*response, 0, sizeof(struct ufs_query_res));
 
3256         (*request)->upiu_req.opcode = opcode;
 
3257         (*request)->upiu_req.idn = idn;
 
3258         (*request)->upiu_req.index = index;
 
3259         (*request)->upiu_req.selector = selector;
 
3262 static int ufshcd_query_flag_retry(struct ufs_hba *hba,
 
3263         enum query_opcode opcode, enum flag_idn idn, u8 index, bool *flag_res)
 
3268         for (retries = 0; retries < QUERY_REQ_RETRIES; retries++) {
 
3269                 ret = ufshcd_query_flag(hba, opcode, idn, index, flag_res);
 
3272                                 "%s: failed with error %d, retries %d\n",
 
3273                                 __func__, ret, retries);
 
3280                         "%s: query flag, opcode %d, idn %d, failed with error %d after %d retries\n",
 
3281                         __func__, opcode, idn, ret, retries);
 
3286  * ufshcd_query_flag() - API function for sending flag query requests
 
3287  * @hba: per-adapter instance
 
3288  * @opcode: flag query to perform
 
3289  * @idn: flag idn to access
 
3290  * @index: flag index to access
 
3291  * @flag_res: the flag value after the query request completes
 
3293  * Returns 0 for success, non-zero in case of failure
 
3295 int ufshcd_query_flag(struct ufs_hba *hba, enum query_opcode opcode,
 
3296                         enum flag_idn idn, u8 index, bool *flag_res)
 
3298         struct ufs_query_req *request = NULL;
 
3299         struct ufs_query_res *response = NULL;
 
3300         int err, selector = 0;
 
3301         int timeout = QUERY_REQ_TIMEOUT;
 
3305         ufshcd_hold(hba, false);
 
3306         mutex_lock(&hba->dev_cmd.lock);
 
3307         ufshcd_init_query(hba, &request, &response, opcode, idn, index,
 
3311         case UPIU_QUERY_OPCODE_SET_FLAG:
 
3312         case UPIU_QUERY_OPCODE_CLEAR_FLAG:
 
3313         case UPIU_QUERY_OPCODE_TOGGLE_FLAG:
 
3314                 request->query_func = UPIU_QUERY_FUNC_STANDARD_WRITE_REQUEST;
 
3316         case UPIU_QUERY_OPCODE_READ_FLAG:
 
3317                 request->query_func = UPIU_QUERY_FUNC_STANDARD_READ_REQUEST;
 
3319                         /* No dummy reads */
 
3320                         dev_err(hba->dev, "%s: Invalid argument for read request\n",
 
3328                         "%s: Expected query flag opcode but got = %d\n",
 
3334         err = ufshcd_exec_dev_cmd(hba, DEV_CMD_TYPE_QUERY, timeout);
 
3338                         "%s: Sending flag query for idn %d failed, err = %d\n",
 
3339                         __func__, idn, err);
 
3344                 *flag_res = (be32_to_cpu(response->upiu_res.value) &
 
3345                                 MASK_QUERY_UPIU_FLAG_LOC) & 0x1;
 
3348         mutex_unlock(&hba->dev_cmd.lock);
 
3349         ufshcd_release(hba);
 
3354  * ufshcd_query_attr - API function for sending attribute requests
 
3355  * @hba: per-adapter instance
 
3356  * @opcode: attribute opcode
 
3357  * @idn: attribute idn to access
 
3358  * @index: index field
 
3359  * @selector: selector field
 
3360  * @attr_val: the attribute value after the query request completes
 
3362  * Returns 0 for success, non-zero in case of failure
 
3364 int ufshcd_query_attr(struct ufs_hba *hba, enum query_opcode opcode,
 
3365                       enum attr_idn idn, u8 index, u8 selector, u32 *attr_val)
 
3367         struct ufs_query_req *request = NULL;
 
3368         struct ufs_query_res *response = NULL;
 
3374                 dev_err(hba->dev, "%s: attribute value required for opcode 0x%x\n",
 
3379         ufshcd_hold(hba, false);
 
3381         mutex_lock(&hba->dev_cmd.lock);
 
3382         ufshcd_init_query(hba, &request, &response, opcode, idn, index,
 
3386         case UPIU_QUERY_OPCODE_WRITE_ATTR:
 
3387                 request->query_func = UPIU_QUERY_FUNC_STANDARD_WRITE_REQUEST;
 
3388                 request->upiu_req.value = cpu_to_be32(*attr_val);
 
3390         case UPIU_QUERY_OPCODE_READ_ATTR:
 
3391                 request->query_func = UPIU_QUERY_FUNC_STANDARD_READ_REQUEST;
 
3394                 dev_err(hba->dev, "%s: Expected query attr opcode but got = 0x%.2x\n",
 
3400         err = ufshcd_exec_dev_cmd(hba, DEV_CMD_TYPE_QUERY, QUERY_REQ_TIMEOUT);
 
3403                 dev_err(hba->dev, "%s: opcode 0x%.2x for idn %d failed, index %d, err = %d\n",
 
3404                                 __func__, opcode, idn, index, err);
 
3408         *attr_val = be32_to_cpu(response->upiu_res.value);
 
3411         mutex_unlock(&hba->dev_cmd.lock);
 
3412         ufshcd_release(hba);
 
3417  * ufshcd_query_attr_retry() - API function for sending query
 
3418  * attribute with retries
 
3419  * @hba: per-adapter instance
 
3420  * @opcode: attribute opcode
 
3421  * @idn: attribute idn to access
 
3422  * @index: index field
 
3423  * @selector: selector field
 
3424  * @attr_val: the attribute value after the query request
 
3427  * Returns 0 for success, non-zero in case of failure
 
3429 int ufshcd_query_attr_retry(struct ufs_hba *hba,
 
3430         enum query_opcode opcode, enum attr_idn idn, u8 index, u8 selector,
 
3436         for (retries = QUERY_REQ_RETRIES; retries > 0; retries--) {
 
3437                 ret = ufshcd_query_attr(hba, opcode, idn, index,
 
3438                                                 selector, attr_val);
 
3440                         dev_dbg(hba->dev, "%s: failed with error %d, retries %d\n",
 
3441                                 __func__, ret, retries);
 
3448                         "%s: query attribute, idn %d, failed with error %d after %d retries\n",
 
3449                         __func__, idn, ret, QUERY_REQ_RETRIES);
 
3453 static int __ufshcd_query_descriptor(struct ufs_hba *hba,
 
3454                         enum query_opcode opcode, enum desc_idn idn, u8 index,
 
3455                         u8 selector, u8 *desc_buf, int *buf_len)
 
3457         struct ufs_query_req *request = NULL;
 
3458         struct ufs_query_res *response = NULL;
 
3464                 dev_err(hba->dev, "%s: descriptor buffer required for opcode 0x%x\n",
 
3469         if (*buf_len < QUERY_DESC_MIN_SIZE || *buf_len > QUERY_DESC_MAX_SIZE) {
 
3470                 dev_err(hba->dev, "%s: descriptor buffer size (%d) is out of range\n",
 
3471                                 __func__, *buf_len);
 
3475         ufshcd_hold(hba, false);
 
3477         mutex_lock(&hba->dev_cmd.lock);
 
3478         ufshcd_init_query(hba, &request, &response, opcode, idn, index,
 
3480         hba->dev_cmd.query.descriptor = desc_buf;
 
3481         request->upiu_req.length = cpu_to_be16(*buf_len);
 
3484         case UPIU_QUERY_OPCODE_WRITE_DESC:
 
3485                 request->query_func = UPIU_QUERY_FUNC_STANDARD_WRITE_REQUEST;
 
3487         case UPIU_QUERY_OPCODE_READ_DESC:
 
3488                 request->query_func = UPIU_QUERY_FUNC_STANDARD_READ_REQUEST;
 
3492                                 "%s: Expected query descriptor opcode but got = 0x%.2x\n",
 
3498         err = ufshcd_exec_dev_cmd(hba, DEV_CMD_TYPE_QUERY, QUERY_REQ_TIMEOUT);
 
3501                 dev_err(hba->dev, "%s: opcode 0x%.2x for idn %d failed, index %d, err = %d\n",
 
3502                                 __func__, opcode, idn, index, err);
 
3506         *buf_len = be16_to_cpu(response->upiu_res.length);
 
3509         hba->dev_cmd.query.descriptor = NULL;
 
3510         mutex_unlock(&hba->dev_cmd.lock);
 
3511         ufshcd_release(hba);
 
3516  * ufshcd_query_descriptor_retry - API function for sending descriptor requests
 
3517  * @hba: per-adapter instance
 
3518  * @opcode: attribute opcode
 
3519  * @idn: attribute idn to access
 
3520  * @index: index field
 
3521  * @selector: selector field
 
3522  * @desc_buf: the buffer that contains the descriptor
 
3523  * @buf_len: length parameter passed to the device
 
3525  * Returns 0 for success, non-zero in case of failure.
 
3526  * The buf_len parameter will contain, on return, the length parameter
 
3527  * received on the response.
 
3529 int ufshcd_query_descriptor_retry(struct ufs_hba *hba,
 
3530                                   enum query_opcode opcode,
 
3531                                   enum desc_idn idn, u8 index,
 
3533                                   u8 *desc_buf, int *buf_len)
 
3538         for (retries = QUERY_REQ_RETRIES; retries > 0; retries--) {
 
3539                 err = __ufshcd_query_descriptor(hba, opcode, idn, index,
 
3540                                                 selector, desc_buf, buf_len);
 
3541                 if (!err || err == -EINVAL)
 
3549  * ufshcd_read_desc_param - read the specified descriptor parameter
 
3550  * @hba: Pointer to adapter instance
 
3551  * @desc_id: descriptor idn value
 
3552  * @desc_index: descriptor index
 
3553  * @param_offset: offset of the parameter to read
 
3554  * @param_read_buf: pointer to buffer where parameter would be read
 
3555  * @param_size: sizeof(param_read_buf)
 
3557  * Return 0 in case of success, non-zero otherwise
 
3559 int ufshcd_read_desc_param(struct ufs_hba *hba,
 
3560                            enum desc_idn desc_id,
 
3568         int buff_len = QUERY_DESC_MAX_SIZE;
 
3569         bool is_kmalloc = true;
 
3572         if (desc_id >= QUERY_DESC_IDN_MAX || !param_size)
 
3575         /* Check whether we need temp memory */
 
3576         if (param_offset != 0 || param_size < buff_len) {
 
3577                 desc_buf = kzalloc(buff_len, GFP_KERNEL);
 
3581                 desc_buf = param_read_buf;
 
3585         /* Request for full descriptor */
 
3586         ret = ufshcd_query_descriptor_retry(hba, UPIU_QUERY_OPCODE_READ_DESC,
 
3587                                             desc_id, desc_index, 0,
 
3588                                             desc_buf, &buff_len);
 
3590                 dev_err(hba->dev, "%s: Failed reading descriptor. desc_id %d, desc_index %d, param_offset %d, ret %d\n",
 
3591                         __func__, desc_id, desc_index, param_offset, ret);
 
3595         /* Update descriptor length */
 
3596         buff_len = desc_buf[QUERY_DESC_LENGTH_OFFSET];
 
3598         if (param_offset >= buff_len) {
 
3599                 dev_err(hba->dev, "%s: Invalid offset 0x%x in descriptor IDN 0x%x, length 0x%x\n",
 
3600                         __func__, param_offset, desc_id, buff_len);
 
3606         if (desc_buf[QUERY_DESC_DESC_TYPE_OFFSET] != desc_id) {
 
3607                 dev_err(hba->dev, "%s: invalid desc_id %d in descriptor header\n",
 
3608                         __func__, desc_buf[QUERY_DESC_DESC_TYPE_OFFSET]);
 
3614                 /* Make sure we don't copy more data than available */
 
3615                 if (param_offset >= buff_len)
 
3618                         memcpy(param_read_buf, &desc_buf[param_offset],
 
3619                                min_t(u32, param_size, buff_len - param_offset));
 
3628  * struct uc_string_id - unicode string
 
3630  * @len: size of this descriptor inclusive
 
3631  * @type: descriptor type
 
3632  * @uc: unicode string character
 
3634 struct uc_string_id {
 
3640 /* replace non-printable or non-ASCII characters with spaces */
 
3641 static inline char ufshcd_remove_non_printable(u8 ch)
 
3643         return (ch >= 0x20 && ch <= 0x7e) ? ch : ' ';
 
3647  * ufshcd_read_string_desc - read string descriptor
 
3648  * @hba: pointer to adapter instance
 
3649  * @desc_index: descriptor index
 
3650  * @buf: pointer to buffer where descriptor would be read,
 
3651  *       the caller should free the memory.
 
3652  * @ascii: if true convert from unicode to ascii characters
 
3653  *         null terminated string.
 
3656  * *      string size on success.
 
3657  * *      -ENOMEM: on allocation failure
 
3658  * *      -EINVAL: on a wrong parameter
 
3660 int ufshcd_read_string_desc(struct ufs_hba *hba, u8 desc_index,
 
3661                             u8 **buf, bool ascii)
 
3663         struct uc_string_id *uc_str;
 
3670         uc_str = kzalloc(QUERY_DESC_MAX_SIZE, GFP_KERNEL);
 
3674         ret = ufshcd_read_desc_param(hba, QUERY_DESC_IDN_STRING, desc_index, 0,
 
3675                                      (u8 *)uc_str, QUERY_DESC_MAX_SIZE);
 
3677                 dev_err(hba->dev, "Reading String Desc failed after %d retries. err = %d\n",
 
3678                         QUERY_REQ_RETRIES, ret);
 
3683         if (uc_str->len <= QUERY_DESC_HDR_SIZE) {
 
3684                 dev_dbg(hba->dev, "String Desc is of zero length\n");
 
3693                 /* remove header and divide by 2 to move from UTF16 to UTF8 */
 
3694                 ascii_len = (uc_str->len - QUERY_DESC_HDR_SIZE) / 2 + 1;
 
3695                 str = kzalloc(ascii_len, GFP_KERNEL);
 
3702                  * the descriptor contains string in UTF16 format
 
3703                  * we need to convert to utf-8 so it can be displayed
 
3705                 ret = utf16s_to_utf8s(uc_str->uc,
 
3706                                       uc_str->len - QUERY_DESC_HDR_SIZE,
 
3707                                       UTF16_BIG_ENDIAN, str, ascii_len);
 
3709                 /* replace non-printable or non-ASCII characters with spaces */
 
3710                 for (i = 0; i < ret; i++)
 
3711                         str[i] = ufshcd_remove_non_printable(str[i]);
 
3716                 str = kmemdup(uc_str, uc_str->len, GFP_KERNEL);
 
3730  * ufshcd_read_unit_desc_param - read the specified unit descriptor parameter
 
3731  * @hba: Pointer to adapter instance
 
3733  * @param_offset: offset of the parameter to read
 
3734  * @param_read_buf: pointer to buffer where parameter would be read
 
3735  * @param_size: sizeof(param_read_buf)
 
3737  * Return 0 in case of success, non-zero otherwise
 
3739 static inline int ufshcd_read_unit_desc_param(struct ufs_hba *hba,
 
3741                                               enum unit_desc_param param_offset,
 
3746          * Unit descriptors are only available for general purpose LUs (LUN id
 
3747          * from 0 to 7) and RPMB Well known LU.
 
3749         if (!ufs_is_valid_unit_desc_lun(&hba->dev_info, lun))
 
3752         return ufshcd_read_desc_param(hba, QUERY_DESC_IDN_UNIT, lun,
 
3753                                       param_offset, param_read_buf, param_size);
 
3756 static int ufshcd_get_ref_clk_gating_wait(struct ufs_hba *hba)
 
3759         u32 gating_wait = UFSHCD_REF_CLK_GATING_WAIT_US;
 
3761         if (hba->dev_info.wspecversion >= 0x300) {
 
3762                 err = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
3763                                 QUERY_ATTR_IDN_REF_CLK_GATING_WAIT_TIME, 0, 0,
 
3766                         dev_err(hba->dev, "Failed reading bRefClkGatingWait. err = %d, use default %uus\n",
 
3769                 if (gating_wait == 0) {
 
3770                         gating_wait = UFSHCD_REF_CLK_GATING_WAIT_US;
 
3771                         dev_err(hba->dev, "Undefined ref clk gating wait time, use default %uus\n",
 
3775                 hba->dev_info.clk_gating_wait_us = gating_wait;
 
3782  * ufshcd_memory_alloc - allocate memory for host memory space data structures
 
3783  * @hba: per adapter instance
 
3785  * 1. Allocate DMA memory for Command Descriptor array
 
3786  *      Each command descriptor consist of Command UPIU, Response UPIU and PRDT
 
3787  * 2. Allocate DMA memory for UTP Transfer Request Descriptor List (UTRDL).
 
3788  * 3. Allocate DMA memory for UTP Task Management Request Descriptor List
 
3790  * 4. Allocate memory for local reference block(lrb).
 
3792  * Returns 0 for success, non-zero in case of failure
 
3794 static int ufshcd_memory_alloc(struct ufs_hba *hba)
 
3796         size_t utmrdl_size, utrdl_size, ucdl_size;
 
3798         /* Allocate memory for UTP command descriptors */
 
3799         ucdl_size = sizeof_utp_transfer_cmd_desc(hba) * hba->nutrs;
 
3800         hba->ucdl_base_addr = dmam_alloc_coherent(hba->dev,
 
3802                                                   &hba->ucdl_dma_addr,
 
3806          * UFSHCI requires UTP command descriptor to be 128 byte aligned.
 
3808         if (!hba->ucdl_base_addr ||
 
3809             WARN_ON(hba->ucdl_dma_addr & (128 - 1))) {
 
3811                         "Command Descriptor Memory allocation failed\n");
 
3816          * Allocate memory for UTP Transfer descriptors
 
3817          * UFSHCI requires 1024 byte alignment of UTRD
 
3819         utrdl_size = (sizeof(struct utp_transfer_req_desc) * hba->nutrs);
 
3820         hba->utrdl_base_addr = dmam_alloc_coherent(hba->dev,
 
3822                                                    &hba->utrdl_dma_addr,
 
3824         if (!hba->utrdl_base_addr ||
 
3825             WARN_ON(hba->utrdl_dma_addr & (1024 - 1))) {
 
3827                         "Transfer Descriptor Memory allocation failed\n");
 
3832          * Skip utmrdl allocation; it may have been
 
3833          * allocated during first pass and not released during
 
3834          * MCQ memory allocation.
 
3835          * See ufshcd_release_sdb_queue() and ufshcd_config_mcq()
 
3837         if (hba->utmrdl_base_addr)
 
3840          * Allocate memory for UTP Task Management descriptors
 
3841          * UFSHCI requires 1024 byte alignment of UTMRD
 
3843         utmrdl_size = sizeof(struct utp_task_req_desc) * hba->nutmrs;
 
3844         hba->utmrdl_base_addr = dmam_alloc_coherent(hba->dev,
 
3846                                                     &hba->utmrdl_dma_addr,
 
3848         if (!hba->utmrdl_base_addr ||
 
3849             WARN_ON(hba->utmrdl_dma_addr & (1024 - 1))) {
 
3851                 "Task Management Descriptor Memory allocation failed\n");
 
3856         /* Allocate memory for local reference block */
 
3857         hba->lrb = devm_kcalloc(hba->dev,
 
3858                                 hba->nutrs, sizeof(struct ufshcd_lrb),
 
3861                 dev_err(hba->dev, "LRB Memory allocation failed\n");
 
3870  * ufshcd_host_memory_configure - configure local reference block with
 
3872  * @hba: per adapter instance
 
3874  * Configure Host memory space
 
3875  * 1. Update Corresponding UTRD.UCDBA and UTRD.UCDBAU with UCD DMA
 
3877  * 2. Update each UTRD with Response UPIU offset, Response UPIU length
 
3879  * 3. Save the corresponding addresses of UTRD, UCD.CMD, UCD.RSP and UCD.PRDT
 
3880  * into local reference block.
 
3882 static void ufshcd_host_memory_configure(struct ufs_hba *hba)
 
3884         struct utp_transfer_req_desc *utrdlp;
 
3885         dma_addr_t cmd_desc_dma_addr;
 
3886         dma_addr_t cmd_desc_element_addr;
 
3887         u16 response_offset;
 
3892         utrdlp = hba->utrdl_base_addr;
 
3895                 offsetof(struct utp_transfer_cmd_desc, response_upiu);
 
3897                 offsetof(struct utp_transfer_cmd_desc, prd_table);
 
3899         cmd_desc_size = sizeof_utp_transfer_cmd_desc(hba);
 
3900         cmd_desc_dma_addr = hba->ucdl_dma_addr;
 
3902         for (i = 0; i < hba->nutrs; i++) {
 
3903                 /* Configure UTRD with command descriptor base address */
 
3904                 cmd_desc_element_addr =
 
3905                                 (cmd_desc_dma_addr + (cmd_desc_size * i));
 
3906                 utrdlp[i].command_desc_base_addr =
 
3907                                 cpu_to_le64(cmd_desc_element_addr);
 
3909                 /* Response upiu and prdt offset should be in double words */
 
3910                 if (hba->quirks & UFSHCD_QUIRK_PRDT_BYTE_GRAN) {
 
3911                         utrdlp[i].response_upiu_offset =
 
3912                                 cpu_to_le16(response_offset);
 
3913                         utrdlp[i].prd_table_offset =
 
3914                                 cpu_to_le16(prdt_offset);
 
3915                         utrdlp[i].response_upiu_length =
 
3916                                 cpu_to_le16(ALIGNED_UPIU_SIZE);
 
3918                         utrdlp[i].response_upiu_offset =
 
3919                                 cpu_to_le16(response_offset >> 2);
 
3920                         utrdlp[i].prd_table_offset =
 
3921                                 cpu_to_le16(prdt_offset >> 2);
 
3922                         utrdlp[i].response_upiu_length =
 
3923                                 cpu_to_le16(ALIGNED_UPIU_SIZE >> 2);
 
3926                 ufshcd_init_lrb(hba, &hba->lrb[i], i);
 
3931  * ufshcd_dme_link_startup - Notify Unipro to perform link startup
 
3932  * @hba: per adapter instance
 
3934  * UIC_CMD_DME_LINK_STARTUP command must be issued to Unipro layer,
 
3935  * in order to initialize the Unipro link startup procedure.
 
3936  * Once the Unipro links are up, the device connected to the controller
 
3939  * Returns 0 on success, non-zero value on failure
 
3941 static int ufshcd_dme_link_startup(struct ufs_hba *hba)
 
3943         struct uic_command uic_cmd = {0};
 
3946         uic_cmd.command = UIC_CMD_DME_LINK_STARTUP;
 
3948         ret = ufshcd_send_uic_cmd(hba, &uic_cmd);
 
3951                         "dme-link-startup: error code %d\n", ret);
 
3955  * ufshcd_dme_reset - UIC command for DME_RESET
 
3956  * @hba: per adapter instance
 
3958  * DME_RESET command is issued in order to reset UniPro stack.
 
3959  * This function now deals with cold reset.
 
3961  * Returns 0 on success, non-zero value on failure
 
3963 static int ufshcd_dme_reset(struct ufs_hba *hba)
 
3965         struct uic_command uic_cmd = {0};
 
3968         uic_cmd.command = UIC_CMD_DME_RESET;
 
3970         ret = ufshcd_send_uic_cmd(hba, &uic_cmd);
 
3973                         "dme-reset: error code %d\n", ret);
 
3978 int ufshcd_dme_configure_adapt(struct ufs_hba *hba,
 
3984         if (agreed_gear < UFS_HS_G4)
 
3985                 adapt_val = PA_NO_ADAPT;
 
3987         ret = ufshcd_dme_set(hba,
 
3988                              UIC_ARG_MIB(PA_TXHSADAPTTYPE),
 
3992 EXPORT_SYMBOL_GPL(ufshcd_dme_configure_adapt);
 
3995  * ufshcd_dme_enable - UIC command for DME_ENABLE
 
3996  * @hba: per adapter instance
 
3998  * DME_ENABLE command is issued in order to enable UniPro stack.
 
4000  * Returns 0 on success, non-zero value on failure
 
4002 static int ufshcd_dme_enable(struct ufs_hba *hba)
 
4004         struct uic_command uic_cmd = {0};
 
4007         uic_cmd.command = UIC_CMD_DME_ENABLE;
 
4009         ret = ufshcd_send_uic_cmd(hba, &uic_cmd);
 
4012                         "dme-enable: error code %d\n", ret);
 
4017 static inline void ufshcd_add_delay_before_dme_cmd(struct ufs_hba *hba)
 
4019         #define MIN_DELAY_BEFORE_DME_CMDS_US    1000
 
4020         unsigned long min_sleep_time_us;
 
4022         if (!(hba->quirks & UFSHCD_QUIRK_DELAY_BEFORE_DME_CMDS))
 
4026          * last_dme_cmd_tstamp will be 0 only for 1st call to
 
4029         if (unlikely(!ktime_to_us(hba->last_dme_cmd_tstamp))) {
 
4030                 min_sleep_time_us = MIN_DELAY_BEFORE_DME_CMDS_US;
 
4032                 unsigned long delta =
 
4033                         (unsigned long) ktime_to_us(
 
4034                                 ktime_sub(ktime_get(),
 
4035                                 hba->last_dme_cmd_tstamp));
 
4037                 if (delta < MIN_DELAY_BEFORE_DME_CMDS_US)
 
4039                                 MIN_DELAY_BEFORE_DME_CMDS_US - delta;
 
4041                         return; /* no more delay required */
 
4044         /* allow sleep for extra 50us if needed */
 
4045         usleep_range(min_sleep_time_us, min_sleep_time_us + 50);
 
4049  * ufshcd_dme_set_attr - UIC command for DME_SET, DME_PEER_SET
 
4050  * @hba: per adapter instance
 
4051  * @attr_sel: uic command argument1
 
4052  * @attr_set: attribute set type as uic command argument2
 
4053  * @mib_val: setting value as uic command argument3
 
4054  * @peer: indicate whether peer or local
 
4056  * Returns 0 on success, non-zero value on failure
 
4058 int ufshcd_dme_set_attr(struct ufs_hba *hba, u32 attr_sel,
 
4059                         u8 attr_set, u32 mib_val, u8 peer)
 
4061         struct uic_command uic_cmd = {0};
 
4062         static const char *const action[] = {
 
4066         const char *set = action[!!peer];
 
4068         int retries = UFS_UIC_COMMAND_RETRIES;
 
4070         uic_cmd.command = peer ?
 
4071                 UIC_CMD_DME_PEER_SET : UIC_CMD_DME_SET;
 
4072         uic_cmd.argument1 = attr_sel;
 
4073         uic_cmd.argument2 = UIC_ARG_ATTR_TYPE(attr_set);
 
4074         uic_cmd.argument3 = mib_val;
 
4077                 /* for peer attributes we retry upon failure */
 
4078                 ret = ufshcd_send_uic_cmd(hba, &uic_cmd);
 
4080                         dev_dbg(hba->dev, "%s: attr-id 0x%x val 0x%x error code %d\n",
 
4081                                 set, UIC_GET_ATTR_ID(attr_sel), mib_val, ret);
 
4082         } while (ret && peer && --retries);
 
4085                 dev_err(hba->dev, "%s: attr-id 0x%x val 0x%x failed %d retries\n",
 
4086                         set, UIC_GET_ATTR_ID(attr_sel), mib_val,
 
4087                         UFS_UIC_COMMAND_RETRIES - retries);
 
4091 EXPORT_SYMBOL_GPL(ufshcd_dme_set_attr);
 
4094  * ufshcd_dme_get_attr - UIC command for DME_GET, DME_PEER_GET
 
4095  * @hba: per adapter instance
 
4096  * @attr_sel: uic command argument1
 
4097  * @mib_val: the value of the attribute as returned by the UIC command
 
4098  * @peer: indicate whether peer or local
 
4100  * Returns 0 on success, non-zero value on failure
 
4102 int ufshcd_dme_get_attr(struct ufs_hba *hba, u32 attr_sel,
 
4103                         u32 *mib_val, u8 peer)
 
4105         struct uic_command uic_cmd = {0};
 
4106         static const char *const action[] = {
 
4110         const char *get = action[!!peer];
 
4112         int retries = UFS_UIC_COMMAND_RETRIES;
 
4113         struct ufs_pa_layer_attr orig_pwr_info;
 
4114         struct ufs_pa_layer_attr temp_pwr_info;
 
4115         bool pwr_mode_change = false;
 
4117         if (peer && (hba->quirks & UFSHCD_QUIRK_DME_PEER_ACCESS_AUTO_MODE)) {
 
4118                 orig_pwr_info = hba->pwr_info;
 
4119                 temp_pwr_info = orig_pwr_info;
 
4121                 if (orig_pwr_info.pwr_tx == FAST_MODE ||
 
4122                     orig_pwr_info.pwr_rx == FAST_MODE) {
 
4123                         temp_pwr_info.pwr_tx = FASTAUTO_MODE;
 
4124                         temp_pwr_info.pwr_rx = FASTAUTO_MODE;
 
4125                         pwr_mode_change = true;
 
4126                 } else if (orig_pwr_info.pwr_tx == SLOW_MODE ||
 
4127                     orig_pwr_info.pwr_rx == SLOW_MODE) {
 
4128                         temp_pwr_info.pwr_tx = SLOWAUTO_MODE;
 
4129                         temp_pwr_info.pwr_rx = SLOWAUTO_MODE;
 
4130                         pwr_mode_change = true;
 
4132                 if (pwr_mode_change) {
 
4133                         ret = ufshcd_change_power_mode(hba, &temp_pwr_info);
 
4139         uic_cmd.command = peer ?
 
4140                 UIC_CMD_DME_PEER_GET : UIC_CMD_DME_GET;
 
4141         uic_cmd.argument1 = attr_sel;
 
4144                 /* for peer attributes we retry upon failure */
 
4145                 ret = ufshcd_send_uic_cmd(hba, &uic_cmd);
 
4147                         dev_dbg(hba->dev, "%s: attr-id 0x%x error code %d\n",
 
4148                                 get, UIC_GET_ATTR_ID(attr_sel), ret);
 
4149         } while (ret && peer && --retries);
 
4152                 dev_err(hba->dev, "%s: attr-id 0x%x failed %d retries\n",
 
4153                         get, UIC_GET_ATTR_ID(attr_sel),
 
4154                         UFS_UIC_COMMAND_RETRIES - retries);
 
4156         if (mib_val && !ret)
 
4157                 *mib_val = uic_cmd.argument3;
 
4159         if (peer && (hba->quirks & UFSHCD_QUIRK_DME_PEER_ACCESS_AUTO_MODE)
 
4161                 ufshcd_change_power_mode(hba, &orig_pwr_info);
 
4165 EXPORT_SYMBOL_GPL(ufshcd_dme_get_attr);
 
4168  * ufshcd_uic_pwr_ctrl - executes UIC commands (which affects the link power
 
4169  * state) and waits for it to take effect.
 
4171  * @hba: per adapter instance
 
4172  * @cmd: UIC command to execute
 
4174  * DME operations like DME_SET(PA_PWRMODE), DME_HIBERNATE_ENTER &
 
4175  * DME_HIBERNATE_EXIT commands take some time to take its effect on both host
 
4176  * and device UniPro link and hence it's final completion would be indicated by
 
4177  * dedicated status bits in Interrupt Status register (UPMS, UHES, UHXS) in
 
4178  * addition to normal UIC command completion Status (UCCS). This function only
 
4179  * returns after the relevant status bits indicate the completion.
 
4181  * Returns 0 on success, non-zero value on failure
 
4183 static int ufshcd_uic_pwr_ctrl(struct ufs_hba *hba, struct uic_command *cmd)
 
4185         DECLARE_COMPLETION_ONSTACK(uic_async_done);
 
4186         unsigned long flags;
 
4189         bool reenable_intr = false;
 
4191         mutex_lock(&hba->uic_cmd_mutex);
 
4192         ufshcd_add_delay_before_dme_cmd(hba);
 
4194         spin_lock_irqsave(hba->host->host_lock, flags);
 
4195         if (ufshcd_is_link_broken(hba)) {
 
4199         hba->uic_async_done = &uic_async_done;
 
4200         if (ufshcd_readl(hba, REG_INTERRUPT_ENABLE) & UIC_COMMAND_COMPL) {
 
4201                 ufshcd_disable_intr(hba, UIC_COMMAND_COMPL);
 
4203                  * Make sure UIC command completion interrupt is disabled before
 
4204                  * issuing UIC command.
 
4207                 reenable_intr = true;
 
4209         ret = __ufshcd_send_uic_cmd(hba, cmd, false);
 
4210         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
4213                         "pwr ctrl cmd 0x%x with mode 0x%x uic error %d\n",
 
4214                         cmd->command, cmd->argument3, ret);
 
4218         if (!wait_for_completion_timeout(hba->uic_async_done,
 
4219                                          msecs_to_jiffies(UIC_CMD_TIMEOUT))) {
 
4221                         "pwr ctrl cmd 0x%x with mode 0x%x completion timeout\n",
 
4222                         cmd->command, cmd->argument3);
 
4224                 if (!cmd->cmd_active) {
 
4225                         dev_err(hba->dev, "%s: Power Mode Change operation has been completed, go check UPMCRS\n",
 
4235         status = ufshcd_get_upmcrs(hba);
 
4236         if (status != PWR_LOCAL) {
 
4238                         "pwr ctrl cmd 0x%x failed, host upmcrs:0x%x\n",
 
4239                         cmd->command, status);
 
4240                 ret = (status != PWR_OK) ? status : -1;
 
4244                 ufshcd_print_host_state(hba);
 
4245                 ufshcd_print_pwr_info(hba);
 
4246                 ufshcd_print_evt_hist(hba);
 
4249         spin_lock_irqsave(hba->host->host_lock, flags);
 
4250         hba->active_uic_cmd = NULL;
 
4251         hba->uic_async_done = NULL;
 
4253                 ufshcd_enable_intr(hba, UIC_COMMAND_COMPL);
 
4255                 ufshcd_set_link_broken(hba);
 
4256                 ufshcd_schedule_eh_work(hba);
 
4259         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
4260         mutex_unlock(&hba->uic_cmd_mutex);
 
4266  * ufshcd_uic_change_pwr_mode - Perform the UIC power mode chage
 
4267  *                              using DME_SET primitives.
 
4268  * @hba: per adapter instance
 
4269  * @mode: powr mode value
 
4271  * Returns 0 on success, non-zero value on failure
 
4273 int ufshcd_uic_change_pwr_mode(struct ufs_hba *hba, u8 mode)
 
4275         struct uic_command uic_cmd = {0};
 
4278         if (hba->quirks & UFSHCD_QUIRK_BROKEN_PA_RXHSUNTERMCAP) {
 
4279                 ret = ufshcd_dme_set(hba,
 
4280                                 UIC_ARG_MIB_SEL(PA_RXHSUNTERMCAP, 0), 1);
 
4282                         dev_err(hba->dev, "%s: failed to enable PA_RXHSUNTERMCAP ret %d\n",
 
4288         uic_cmd.command = UIC_CMD_DME_SET;
 
4289         uic_cmd.argument1 = UIC_ARG_MIB(PA_PWRMODE);
 
4290         uic_cmd.argument3 = mode;
 
4291         ufshcd_hold(hba, false);
 
4292         ret = ufshcd_uic_pwr_ctrl(hba, &uic_cmd);
 
4293         ufshcd_release(hba);
 
4298 EXPORT_SYMBOL_GPL(ufshcd_uic_change_pwr_mode);
 
4300 int ufshcd_link_recovery(struct ufs_hba *hba)
 
4303         unsigned long flags;
 
4305         spin_lock_irqsave(hba->host->host_lock, flags);
 
4306         hba->ufshcd_state = UFSHCD_STATE_RESET;
 
4307         ufshcd_set_eh_in_progress(hba);
 
4308         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
4310         /* Reset the attached device */
 
4311         ufshcd_device_reset(hba);
 
4313         ret = ufshcd_host_reset_and_restore(hba);
 
4315         spin_lock_irqsave(hba->host->host_lock, flags);
 
4317                 hba->ufshcd_state = UFSHCD_STATE_ERROR;
 
4318         ufshcd_clear_eh_in_progress(hba);
 
4319         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
4322                 dev_err(hba->dev, "%s: link recovery failed, err %d",
 
4327 EXPORT_SYMBOL_GPL(ufshcd_link_recovery);
 
4329 int ufshcd_uic_hibern8_enter(struct ufs_hba *hba)
 
4332         struct uic_command uic_cmd = {0};
 
4333         ktime_t start = ktime_get();
 
4335         ufshcd_vops_hibern8_notify(hba, UIC_CMD_DME_HIBER_ENTER, PRE_CHANGE);
 
4337         uic_cmd.command = UIC_CMD_DME_HIBER_ENTER;
 
4338         ret = ufshcd_uic_pwr_ctrl(hba, &uic_cmd);
 
4339         trace_ufshcd_profile_hibern8(dev_name(hba->dev), "enter",
 
4340                              ktime_to_us(ktime_sub(ktime_get(), start)), ret);
 
4343                 dev_err(hba->dev, "%s: hibern8 enter failed. ret = %d\n",
 
4346                 ufshcd_vops_hibern8_notify(hba, UIC_CMD_DME_HIBER_ENTER,
 
4351 EXPORT_SYMBOL_GPL(ufshcd_uic_hibern8_enter);
 
4353 int ufshcd_uic_hibern8_exit(struct ufs_hba *hba)
 
4355         struct uic_command uic_cmd = {0};
 
4357         ktime_t start = ktime_get();
 
4359         ufshcd_vops_hibern8_notify(hba, UIC_CMD_DME_HIBER_EXIT, PRE_CHANGE);
 
4361         uic_cmd.command = UIC_CMD_DME_HIBER_EXIT;
 
4362         ret = ufshcd_uic_pwr_ctrl(hba, &uic_cmd);
 
4363         trace_ufshcd_profile_hibern8(dev_name(hba->dev), "exit",
 
4364                              ktime_to_us(ktime_sub(ktime_get(), start)), ret);
 
4367                 dev_err(hba->dev, "%s: hibern8 exit failed. ret = %d\n",
 
4370                 ufshcd_vops_hibern8_notify(hba, UIC_CMD_DME_HIBER_EXIT,
 
4372                 hba->ufs_stats.last_hibern8_exit_tstamp = local_clock();
 
4373                 hba->ufs_stats.hibern8_exit_cnt++;
 
4378 EXPORT_SYMBOL_GPL(ufshcd_uic_hibern8_exit);
 
4380 void ufshcd_auto_hibern8_update(struct ufs_hba *hba, u32 ahit)
 
4382         unsigned long flags;
 
4383         bool update = false;
 
4385         if (!ufshcd_is_auto_hibern8_supported(hba))
 
4388         spin_lock_irqsave(hba->host->host_lock, flags);
 
4389         if (hba->ahit != ahit) {
 
4393         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
4396             !pm_runtime_suspended(&hba->ufs_device_wlun->sdev_gendev)) {
 
4397                 ufshcd_rpm_get_sync(hba);
 
4398                 ufshcd_hold(hba, false);
 
4399                 ufshcd_auto_hibern8_enable(hba);
 
4400                 ufshcd_release(hba);
 
4401                 ufshcd_rpm_put_sync(hba);
 
4404 EXPORT_SYMBOL_GPL(ufshcd_auto_hibern8_update);
 
4406 void ufshcd_auto_hibern8_enable(struct ufs_hba *hba)
 
4408         if (!ufshcd_is_auto_hibern8_supported(hba))
 
4411         ufshcd_writel(hba, hba->ahit, REG_AUTO_HIBERNATE_IDLE_TIMER);
 
4415  * ufshcd_init_pwr_info - setting the POR (power on reset)
 
4416  * values in hba power info
 
4417  * @hba: per-adapter instance
 
4419 static void ufshcd_init_pwr_info(struct ufs_hba *hba)
 
4421         hba->pwr_info.gear_rx = UFS_PWM_G1;
 
4422         hba->pwr_info.gear_tx = UFS_PWM_G1;
 
4423         hba->pwr_info.lane_rx = 1;
 
4424         hba->pwr_info.lane_tx = 1;
 
4425         hba->pwr_info.pwr_rx = SLOWAUTO_MODE;
 
4426         hba->pwr_info.pwr_tx = SLOWAUTO_MODE;
 
4427         hba->pwr_info.hs_rate = 0;
 
4431  * ufshcd_get_max_pwr_mode - reads the max power mode negotiated with device
 
4432  * @hba: per-adapter instance
 
4434 static int ufshcd_get_max_pwr_mode(struct ufs_hba *hba)
 
4436         struct ufs_pa_layer_attr *pwr_info = &hba->max_pwr_info.info;
 
4438         if (hba->max_pwr_info.is_valid)
 
4441         if (hba->quirks & UFSHCD_QUIRK_HIBERN_FASTAUTO) {
 
4442                 pwr_info->pwr_tx = FASTAUTO_MODE;
 
4443                 pwr_info->pwr_rx = FASTAUTO_MODE;
 
4445                 pwr_info->pwr_tx = FAST_MODE;
 
4446                 pwr_info->pwr_rx = FAST_MODE;
 
4448         pwr_info->hs_rate = PA_HS_MODE_B;
 
4450         /* Get the connected lane count */
 
4451         ufshcd_dme_get(hba, UIC_ARG_MIB(PA_CONNECTEDRXDATALANES),
 
4452                         &pwr_info->lane_rx);
 
4453         ufshcd_dme_get(hba, UIC_ARG_MIB(PA_CONNECTEDTXDATALANES),
 
4454                         &pwr_info->lane_tx);
 
4456         if (!pwr_info->lane_rx || !pwr_info->lane_tx) {
 
4457                 dev_err(hba->dev, "%s: invalid connected lanes value. rx=%d, tx=%d\n",
 
4465          * First, get the maximum gears of HS speed.
 
4466          * If a zero value, it means there is no HSGEAR capability.
 
4467          * Then, get the maximum gears of PWM speed.
 
4469         ufshcd_dme_get(hba, UIC_ARG_MIB(PA_MAXRXHSGEAR), &pwr_info->gear_rx);
 
4470         if (!pwr_info->gear_rx) {
 
4471                 ufshcd_dme_get(hba, UIC_ARG_MIB(PA_MAXRXPWMGEAR),
 
4472                                 &pwr_info->gear_rx);
 
4473                 if (!pwr_info->gear_rx) {
 
4474                         dev_err(hba->dev, "%s: invalid max pwm rx gear read = %d\n",
 
4475                                 __func__, pwr_info->gear_rx);
 
4478                 pwr_info->pwr_rx = SLOW_MODE;
 
4481         ufshcd_dme_peer_get(hba, UIC_ARG_MIB(PA_MAXRXHSGEAR),
 
4482                         &pwr_info->gear_tx);
 
4483         if (!pwr_info->gear_tx) {
 
4484                 ufshcd_dme_peer_get(hba, UIC_ARG_MIB(PA_MAXRXPWMGEAR),
 
4485                                 &pwr_info->gear_tx);
 
4486                 if (!pwr_info->gear_tx) {
 
4487                         dev_err(hba->dev, "%s: invalid max pwm tx gear read = %d\n",
 
4488                                 __func__, pwr_info->gear_tx);
 
4491                 pwr_info->pwr_tx = SLOW_MODE;
 
4494         hba->max_pwr_info.is_valid = true;
 
4498 static int ufshcd_change_power_mode(struct ufs_hba *hba,
 
4499                              struct ufs_pa_layer_attr *pwr_mode)
 
4503         /* if already configured to the requested pwr_mode */
 
4504         if (!hba->force_pmc &&
 
4505             pwr_mode->gear_rx == hba->pwr_info.gear_rx &&
 
4506             pwr_mode->gear_tx == hba->pwr_info.gear_tx &&
 
4507             pwr_mode->lane_rx == hba->pwr_info.lane_rx &&
 
4508             pwr_mode->lane_tx == hba->pwr_info.lane_tx &&
 
4509             pwr_mode->pwr_rx == hba->pwr_info.pwr_rx &&
 
4510             pwr_mode->pwr_tx == hba->pwr_info.pwr_tx &&
 
4511             pwr_mode->hs_rate == hba->pwr_info.hs_rate) {
 
4512                 dev_dbg(hba->dev, "%s: power already configured\n", __func__);
 
4517          * Configure attributes for power mode change with below.
 
4518          * - PA_RXGEAR, PA_ACTIVERXDATALANES, PA_RXTERMINATION,
 
4519          * - PA_TXGEAR, PA_ACTIVETXDATALANES, PA_TXTERMINATION,
 
4522         ufshcd_dme_set(hba, UIC_ARG_MIB(PA_RXGEAR), pwr_mode->gear_rx);
 
4523         ufshcd_dme_set(hba, UIC_ARG_MIB(PA_ACTIVERXDATALANES),
 
4525         if (pwr_mode->pwr_rx == FASTAUTO_MODE ||
 
4526                         pwr_mode->pwr_rx == FAST_MODE)
 
4527                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_RXTERMINATION), true);
 
4529                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_RXTERMINATION), false);
 
4531         ufshcd_dme_set(hba, UIC_ARG_MIB(PA_TXGEAR), pwr_mode->gear_tx);
 
4532         ufshcd_dme_set(hba, UIC_ARG_MIB(PA_ACTIVETXDATALANES),
 
4534         if (pwr_mode->pwr_tx == FASTAUTO_MODE ||
 
4535                         pwr_mode->pwr_tx == FAST_MODE)
 
4536                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_TXTERMINATION), true);
 
4538                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_TXTERMINATION), false);
 
4540         if (pwr_mode->pwr_rx == FASTAUTO_MODE ||
 
4541             pwr_mode->pwr_tx == FASTAUTO_MODE ||
 
4542             pwr_mode->pwr_rx == FAST_MODE ||
 
4543             pwr_mode->pwr_tx == FAST_MODE)
 
4544                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_HSSERIES),
 
4547         if (!(hba->quirks & UFSHCD_QUIRK_SKIP_DEF_UNIPRO_TIMEOUT_SETTING)) {
 
4548                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_PWRMODEUSERDATA0),
 
4549                                 DL_FC0ProtectionTimeOutVal_Default);
 
4550                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_PWRMODEUSERDATA1),
 
4551                                 DL_TC0ReplayTimeOutVal_Default);
 
4552                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_PWRMODEUSERDATA2),
 
4553                                 DL_AFC0ReqTimeOutVal_Default);
 
4554                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_PWRMODEUSERDATA3),
 
4555                                 DL_FC1ProtectionTimeOutVal_Default);
 
4556                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_PWRMODEUSERDATA4),
 
4557                                 DL_TC1ReplayTimeOutVal_Default);
 
4558                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_PWRMODEUSERDATA5),
 
4559                                 DL_AFC1ReqTimeOutVal_Default);
 
4561                 ufshcd_dme_set(hba, UIC_ARG_MIB(DME_LocalFC0ProtectionTimeOutVal),
 
4562                                 DL_FC0ProtectionTimeOutVal_Default);
 
4563                 ufshcd_dme_set(hba, UIC_ARG_MIB(DME_LocalTC0ReplayTimeOutVal),
 
4564                                 DL_TC0ReplayTimeOutVal_Default);
 
4565                 ufshcd_dme_set(hba, UIC_ARG_MIB(DME_LocalAFC0ReqTimeOutVal),
 
4566                                 DL_AFC0ReqTimeOutVal_Default);
 
4569         ret = ufshcd_uic_change_pwr_mode(hba, pwr_mode->pwr_rx << 4
 
4570                         | pwr_mode->pwr_tx);
 
4574                         "%s: power mode change failed %d\n", __func__, ret);
 
4576                 ufshcd_vops_pwr_change_notify(hba, POST_CHANGE, NULL,
 
4579                 memcpy(&hba->pwr_info, pwr_mode,
 
4580                         sizeof(struct ufs_pa_layer_attr));
 
4587  * ufshcd_config_pwr_mode - configure a new power mode
 
4588  * @hba: per-adapter instance
 
4589  * @desired_pwr_mode: desired power configuration
 
4591 int ufshcd_config_pwr_mode(struct ufs_hba *hba,
 
4592                 struct ufs_pa_layer_attr *desired_pwr_mode)
 
4594         struct ufs_pa_layer_attr final_params = { 0 };
 
4597         ret = ufshcd_vops_pwr_change_notify(hba, PRE_CHANGE,
 
4598                                         desired_pwr_mode, &final_params);
 
4601                 memcpy(&final_params, desired_pwr_mode, sizeof(final_params));
 
4603         ret = ufshcd_change_power_mode(hba, &final_params);
 
4607 EXPORT_SYMBOL_GPL(ufshcd_config_pwr_mode);
 
4610  * ufshcd_complete_dev_init() - checks device readiness
 
4611  * @hba: per-adapter instance
 
4613  * Set fDeviceInit flag and poll until device toggles it.
 
4615 static int ufshcd_complete_dev_init(struct ufs_hba *hba)
 
4618         bool flag_res = true;
 
4621         err = ufshcd_query_flag_retry(hba, UPIU_QUERY_OPCODE_SET_FLAG,
 
4622                 QUERY_FLAG_IDN_FDEVICEINIT, 0, NULL);
 
4625                         "%s: setting fDeviceInit flag failed with error %d\n",
 
4630         /* Poll fDeviceInit flag to be cleared */
 
4631         timeout = ktime_add_ms(ktime_get(), FDEVICEINIT_COMPL_TIMEOUT);
 
4633                 err = ufshcd_query_flag(hba, UPIU_QUERY_OPCODE_READ_FLAG,
 
4634                                         QUERY_FLAG_IDN_FDEVICEINIT, 0, &flag_res);
 
4637                 usleep_range(500, 1000);
 
4638         } while (ktime_before(ktime_get(), timeout));
 
4642                                 "%s: reading fDeviceInit flag failed with error %d\n",
 
4644         } else if (flag_res) {
 
4646                                 "%s: fDeviceInit was not cleared by the device\n",
 
4655  * ufshcd_make_hba_operational - Make UFS controller operational
 
4656  * @hba: per adapter instance
 
4658  * To bring UFS host controller to operational state,
 
4659  * 1. Enable required interrupts
 
4660  * 2. Configure interrupt aggregation
 
4661  * 3. Program UTRL and UTMRL base address
 
4662  * 4. Configure run-stop-registers
 
4664  * Returns 0 on success, non-zero value on failure
 
4666 int ufshcd_make_hba_operational(struct ufs_hba *hba)
 
4671         /* Enable required interrupts */
 
4672         ufshcd_enable_intr(hba, UFSHCD_ENABLE_INTRS);
 
4674         /* Configure interrupt aggregation */
 
4675         if (ufshcd_is_intr_aggr_allowed(hba))
 
4676                 ufshcd_config_intr_aggr(hba, hba->nutrs - 1, INT_AGGR_DEF_TO);
 
4678                 ufshcd_disable_intr_aggr(hba);
 
4680         /* Configure UTRL and UTMRL base address registers */
 
4681         ufshcd_writel(hba, lower_32_bits(hba->utrdl_dma_addr),
 
4682                         REG_UTP_TRANSFER_REQ_LIST_BASE_L);
 
4683         ufshcd_writel(hba, upper_32_bits(hba->utrdl_dma_addr),
 
4684                         REG_UTP_TRANSFER_REQ_LIST_BASE_H);
 
4685         ufshcd_writel(hba, lower_32_bits(hba->utmrdl_dma_addr),
 
4686                         REG_UTP_TASK_REQ_LIST_BASE_L);
 
4687         ufshcd_writel(hba, upper_32_bits(hba->utmrdl_dma_addr),
 
4688                         REG_UTP_TASK_REQ_LIST_BASE_H);
 
4691          * Make sure base address and interrupt setup are updated before
 
4692          * enabling the run/stop registers below.
 
4697          * UCRDY, UTMRLDY and UTRLRDY bits must be 1
 
4699         reg = ufshcd_readl(hba, REG_CONTROLLER_STATUS);
 
4700         if (!(ufshcd_get_lists_status(reg))) {
 
4701                 ufshcd_enable_run_stop_reg(hba);
 
4704                         "Host controller not ready to process requests");
 
4710 EXPORT_SYMBOL_GPL(ufshcd_make_hba_operational);
 
4713  * ufshcd_hba_stop - Send controller to reset state
 
4714  * @hba: per adapter instance
 
4716 void ufshcd_hba_stop(struct ufs_hba *hba)
 
4718         unsigned long flags;
 
4722          * Obtain the host lock to prevent that the controller is disabled
 
4723          * while the UFS interrupt handler is active on another CPU.
 
4725         spin_lock_irqsave(hba->host->host_lock, flags);
 
4726         ufshcd_writel(hba, CONTROLLER_DISABLE,  REG_CONTROLLER_ENABLE);
 
4727         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
4729         err = ufshcd_wait_for_register(hba, REG_CONTROLLER_ENABLE,
 
4730                                         CONTROLLER_ENABLE, CONTROLLER_DISABLE,
 
4733                 dev_err(hba->dev, "%s: Controller disable failed\n", __func__);
 
4735 EXPORT_SYMBOL_GPL(ufshcd_hba_stop);
 
4738  * ufshcd_hba_execute_hce - initialize the controller
 
4739  * @hba: per adapter instance
 
4741  * The controller resets itself and controller firmware initialization
 
4742  * sequence kicks off. When controller is ready it will set
 
4743  * the Host Controller Enable bit to 1.
 
4745  * Returns 0 on success, non-zero value on failure
 
4747 static int ufshcd_hba_execute_hce(struct ufs_hba *hba)
 
4749         int retry_outer = 3;
 
4753         if (ufshcd_is_hba_active(hba))
 
4754                 /* change controller state to "reset state" */
 
4755                 ufshcd_hba_stop(hba);
 
4757         /* UniPro link is disabled at this point */
 
4758         ufshcd_set_link_off(hba);
 
4760         ufshcd_vops_hce_enable_notify(hba, PRE_CHANGE);
 
4762         /* start controller initialization sequence */
 
4763         ufshcd_hba_start(hba);
 
4766          * To initialize a UFS host controller HCE bit must be set to 1.
 
4767          * During initialization the HCE bit value changes from 1->0->1.
 
4768          * When the host controller completes initialization sequence
 
4769          * it sets the value of HCE bit to 1. The same HCE bit is read back
 
4770          * to check if the controller has completed initialization sequence.
 
4771          * So without this delay the value HCE = 1, set in the previous
 
4772          * instruction might be read back.
 
4773          * This delay can be changed based on the controller.
 
4775         ufshcd_delay_us(hba->vps->hba_enable_delay_us, 100);
 
4777         /* wait for the host controller to complete initialization */
 
4779         while (!ufshcd_is_hba_active(hba)) {
 
4784                                 "Controller enable failed\n");
 
4791                 usleep_range(1000, 1100);
 
4794         /* enable UIC related interrupts */
 
4795         ufshcd_enable_intr(hba, UFSHCD_UIC_MASK);
 
4797         ufshcd_vops_hce_enable_notify(hba, POST_CHANGE);
 
4802 int ufshcd_hba_enable(struct ufs_hba *hba)
 
4806         if (hba->quirks & UFSHCI_QUIRK_BROKEN_HCE) {
 
4807                 ufshcd_set_link_off(hba);
 
4808                 ufshcd_vops_hce_enable_notify(hba, PRE_CHANGE);
 
4810                 /* enable UIC related interrupts */
 
4811                 ufshcd_enable_intr(hba, UFSHCD_UIC_MASK);
 
4812                 ret = ufshcd_dme_reset(hba);
 
4814                         dev_err(hba->dev, "DME_RESET failed\n");
 
4818                 ret = ufshcd_dme_enable(hba);
 
4820                         dev_err(hba->dev, "Enabling DME failed\n");
 
4824                 ufshcd_vops_hce_enable_notify(hba, POST_CHANGE);
 
4826                 ret = ufshcd_hba_execute_hce(hba);
 
4831 EXPORT_SYMBOL_GPL(ufshcd_hba_enable);
 
4833 static int ufshcd_disable_tx_lcc(struct ufs_hba *hba, bool peer)
 
4835         int tx_lanes = 0, i, err = 0;
 
4838                 ufshcd_dme_get(hba, UIC_ARG_MIB(PA_CONNECTEDTXDATALANES),
 
4841                 ufshcd_dme_peer_get(hba, UIC_ARG_MIB(PA_CONNECTEDTXDATALANES),
 
4843         for (i = 0; i < tx_lanes; i++) {
 
4845                         err = ufshcd_dme_set(hba,
 
4846                                 UIC_ARG_MIB_SEL(TX_LCC_ENABLE,
 
4847                                         UIC_ARG_MPHY_TX_GEN_SEL_INDEX(i)),
 
4850                         err = ufshcd_dme_peer_set(hba,
 
4851                                 UIC_ARG_MIB_SEL(TX_LCC_ENABLE,
 
4852                                         UIC_ARG_MPHY_TX_GEN_SEL_INDEX(i)),
 
4855                         dev_err(hba->dev, "%s: TX LCC Disable failed, peer = %d, lane = %d, err = %d",
 
4856                                 __func__, peer, i, err);
 
4864 static inline int ufshcd_disable_device_tx_lcc(struct ufs_hba *hba)
 
4866         return ufshcd_disable_tx_lcc(hba, true);
 
4869 void ufshcd_update_evt_hist(struct ufs_hba *hba, u32 id, u32 val)
 
4871         struct ufs_event_hist *e;
 
4873         if (id >= UFS_EVT_CNT)
 
4876         e = &hba->ufs_stats.event[id];
 
4877         e->val[e->pos] = val;
 
4878         e->tstamp[e->pos] = local_clock();
 
4880         e->pos = (e->pos + 1) % UFS_EVENT_HIST_LENGTH;
 
4882         ufshcd_vops_event_notify(hba, id, &val);
 
4884 EXPORT_SYMBOL_GPL(ufshcd_update_evt_hist);
 
4887  * ufshcd_link_startup - Initialize unipro link startup
 
4888  * @hba: per adapter instance
 
4890  * Returns 0 for success, non-zero in case of failure
 
4892 static int ufshcd_link_startup(struct ufs_hba *hba)
 
4895         int retries = DME_LINKSTARTUP_RETRIES;
 
4896         bool link_startup_again = false;
 
4899          * If UFS device isn't active then we will have to issue link startup
 
4900          * 2 times to make sure the device state move to active.
 
4902         if (!ufshcd_is_ufs_dev_active(hba))
 
4903                 link_startup_again = true;
 
4907                 ufshcd_vops_link_startup_notify(hba, PRE_CHANGE);
 
4909                 ret = ufshcd_dme_link_startup(hba);
 
4911                 /* check if device is detected by inter-connect layer */
 
4912                 if (!ret && !ufshcd_is_device_present(hba)) {
 
4913                         ufshcd_update_evt_hist(hba,
 
4914                                                UFS_EVT_LINK_STARTUP_FAIL,
 
4916                         dev_err(hba->dev, "%s: Device not present\n", __func__);
 
4922                  * DME link lost indication is only received when link is up,
 
4923                  * but we can't be sure if the link is up until link startup
 
4924                  * succeeds. So reset the local Uni-Pro and try again.
 
4926                 if (ret && retries && ufshcd_hba_enable(hba)) {
 
4927                         ufshcd_update_evt_hist(hba,
 
4928                                                UFS_EVT_LINK_STARTUP_FAIL,
 
4932         } while (ret && retries--);
 
4935                 /* failed to get the link up... retire */
 
4936                 ufshcd_update_evt_hist(hba,
 
4937                                        UFS_EVT_LINK_STARTUP_FAIL,
 
4942         if (link_startup_again) {
 
4943                 link_startup_again = false;
 
4944                 retries = DME_LINKSTARTUP_RETRIES;
 
4948         /* Mark that link is up in PWM-G1, 1-lane, SLOW-AUTO mode */
 
4949         ufshcd_init_pwr_info(hba);
 
4950         ufshcd_print_pwr_info(hba);
 
4952         if (hba->quirks & UFSHCD_QUIRK_BROKEN_LCC) {
 
4953                 ret = ufshcd_disable_device_tx_lcc(hba);
 
4958         /* Include any host controller configuration via UIC commands */
 
4959         ret = ufshcd_vops_link_startup_notify(hba, POST_CHANGE);
 
4963         /* Clear UECPA once due to LINERESET has happened during LINK_STARTUP */
 
4964         ufshcd_readl(hba, REG_UIC_ERROR_CODE_PHY_ADAPTER_LAYER);
 
4965         ret = ufshcd_make_hba_operational(hba);
 
4968                 dev_err(hba->dev, "link startup failed %d\n", ret);
 
4969                 ufshcd_print_host_state(hba);
 
4970                 ufshcd_print_pwr_info(hba);
 
4971                 ufshcd_print_evt_hist(hba);
 
4977  * ufshcd_verify_dev_init() - Verify device initialization
 
4978  * @hba: per-adapter instance
 
4980  * Send NOP OUT UPIU and wait for NOP IN response to check whether the
 
4981  * device Transport Protocol (UTP) layer is ready after a reset.
 
4982  * If the UTP layer at the device side is not initialized, it may
 
4983  * not respond with NOP IN UPIU within timeout of %NOP_OUT_TIMEOUT
 
4984  * and we retry sending NOP OUT for %NOP_OUT_RETRIES iterations.
 
4986 static int ufshcd_verify_dev_init(struct ufs_hba *hba)
 
4991         ufshcd_hold(hba, false);
 
4992         mutex_lock(&hba->dev_cmd.lock);
 
4993         for (retries = NOP_OUT_RETRIES; retries > 0; retries--) {
 
4994                 err = ufshcd_exec_dev_cmd(hba, DEV_CMD_TYPE_NOP,
 
4995                                           hba->nop_out_timeout);
 
4997                 if (!err || err == -ETIMEDOUT)
 
5000                 dev_dbg(hba->dev, "%s: error %d retrying\n", __func__, err);
 
5002         mutex_unlock(&hba->dev_cmd.lock);
 
5003         ufshcd_release(hba);
 
5006                 dev_err(hba->dev, "%s: NOP OUT failed %d\n", __func__, err);
 
5011  * ufshcd_setup_links - associate link b/w device wlun and other luns
 
5012  * @sdev: pointer to SCSI device
 
5013  * @hba: pointer to ufs hba
 
5015 static void ufshcd_setup_links(struct ufs_hba *hba, struct scsi_device *sdev)
 
5017         struct device_link *link;
 
5020          * Device wlun is the supplier & rest of the luns are consumers.
 
5021          * This ensures that device wlun suspends after all other luns.
 
5023         if (hba->ufs_device_wlun) {
 
5024                 link = device_link_add(&sdev->sdev_gendev,
 
5025                                        &hba->ufs_device_wlun->sdev_gendev,
 
5026                                        DL_FLAG_PM_RUNTIME | DL_FLAG_RPM_ACTIVE);
 
5028                         dev_err(&sdev->sdev_gendev, "Failed establishing link - %s\n",
 
5029                                 dev_name(&hba->ufs_device_wlun->sdev_gendev));
 
5033                 /* Ignore REPORT_LUN wlun probing */
 
5034                 if (hba->luns_avail == 1) {
 
5035                         ufshcd_rpm_put(hba);
 
5040                  * Device wlun is probed. The assumption is that WLUNs are
 
5041                  * scanned before other LUNs.
 
5048  * ufshcd_lu_init - Initialize the relevant parameters of the LU
 
5049  * @hba: per-adapter instance
 
5050  * @sdev: pointer to SCSI device
 
5052 static void ufshcd_lu_init(struct ufs_hba *hba, struct scsi_device *sdev)
 
5054         int len = QUERY_DESC_MAX_SIZE;
 
5055         u8 lun = ufshcd_scsi_to_upiu_lun(sdev->lun);
 
5056         u8 lun_qdepth = hba->nutrs;
 
5060         desc_buf = kzalloc(len, GFP_KERNEL);
 
5064         ret = ufshcd_read_unit_desc_param(hba, lun, 0, desc_buf, len);
 
5066                 if (ret == -EOPNOTSUPP)
 
5067                         /* If LU doesn't support unit descriptor, its queue depth is set to 1 */
 
5073         if (desc_buf[UNIT_DESC_PARAM_LU_Q_DEPTH]) {
 
5075                  * In per-LU queueing architecture, bLUQueueDepth will not be 0, then we will
 
5076                  * use the smaller between UFSHCI CAP.NUTRS and UFS LU bLUQueueDepth
 
5078                 lun_qdepth = min_t(int, desc_buf[UNIT_DESC_PARAM_LU_Q_DEPTH], hba->nutrs);
 
5081          * According to UFS device specification, the write protection mode is only supported by
 
5082          * normal LU, not supported by WLUN.
 
5084         if (hba->dev_info.f_power_on_wp_en && lun < hba->dev_info.max_lu_supported &&
 
5085             !hba->dev_info.is_lu_power_on_wp &&
 
5086             desc_buf[UNIT_DESC_PARAM_LU_WR_PROTECT] == UFS_LU_POWER_ON_WP)
 
5087                 hba->dev_info.is_lu_power_on_wp = true;
 
5089         /* In case of RPMB LU, check if advanced RPMB mode is enabled */
 
5090         if (desc_buf[UNIT_DESC_PARAM_UNIT_INDEX] == UFS_UPIU_RPMB_WLUN &&
 
5091             desc_buf[RPMB_UNIT_DESC_PARAM_REGION_EN] & BIT(4))
 
5092                 hba->dev_info.b_advanced_rpmb_en = true;
 
5098          * For WLUNs that don't support unit descriptor, queue depth is set to 1. For LUs whose
 
5099          * bLUQueueDepth == 0, the queue depth is set to a maximum value that host can queue.
 
5101         dev_dbg(hba->dev, "Set LU %x queue depth %d\n", lun, lun_qdepth);
 
5102         scsi_change_queue_depth(sdev, lun_qdepth);
 
5106  * ufshcd_slave_alloc - handle initial SCSI device configurations
 
5107  * @sdev: pointer to SCSI device
 
5111 static int ufshcd_slave_alloc(struct scsi_device *sdev)
 
5113         struct ufs_hba *hba;
 
5115         hba = shost_priv(sdev->host);
 
5117         /* Mode sense(6) is not supported by UFS, so use Mode sense(10) */
 
5118         sdev->use_10_for_ms = 1;
 
5120         /* DBD field should be set to 1 in mode sense(10) */
 
5121         sdev->set_dbd_for_ms = 1;
 
5123         /* allow SCSI layer to restart the device in case of errors */
 
5124         sdev->allow_restart = 1;
 
5126         /* REPORT SUPPORTED OPERATION CODES is not supported */
 
5127         sdev->no_report_opcodes = 1;
 
5129         /* WRITE_SAME command is not supported */
 
5130         sdev->no_write_same = 1;
 
5132         ufshcd_lu_init(hba, sdev);
 
5134         ufshcd_setup_links(hba, sdev);
 
5140  * ufshcd_change_queue_depth - change queue depth
 
5141  * @sdev: pointer to SCSI device
 
5142  * @depth: required depth to set
 
5144  * Change queue depth and make sure the max. limits are not crossed.
 
5146 static int ufshcd_change_queue_depth(struct scsi_device *sdev, int depth)
 
5148         return scsi_change_queue_depth(sdev, min(depth, sdev->host->can_queue));
 
5151 static void ufshcd_hpb_destroy(struct ufs_hba *hba, struct scsi_device *sdev)
 
5153         /* skip well-known LU */
 
5154         if ((sdev->lun >= UFS_UPIU_MAX_UNIT_NUM_ID) ||
 
5155             !(hba->dev_info.hpb_enabled) || !ufshpb_is_allowed(hba))
 
5158         ufshpb_destroy_lu(hba, sdev);
 
5161 static void ufshcd_hpb_configure(struct ufs_hba *hba, struct scsi_device *sdev)
 
5163         /* skip well-known LU */
 
5164         if ((sdev->lun >= UFS_UPIU_MAX_UNIT_NUM_ID) ||
 
5165             !(hba->dev_info.hpb_enabled) || !ufshpb_is_allowed(hba))
 
5168         ufshpb_init_hpb_lu(hba, sdev);
 
5172  * ufshcd_slave_configure - adjust SCSI device configurations
 
5173  * @sdev: pointer to SCSI device
 
5175 static int ufshcd_slave_configure(struct scsi_device *sdev)
 
5177         struct ufs_hba *hba = shost_priv(sdev->host);
 
5178         struct request_queue *q = sdev->request_queue;
 
5180         ufshcd_hpb_configure(hba, sdev);
 
5182         blk_queue_update_dma_pad(q, PRDT_DATA_BYTE_COUNT_PAD - 1);
 
5183         if (hba->quirks & UFSHCD_QUIRK_4KB_DMA_ALIGNMENT)
 
5184                 blk_queue_update_dma_alignment(q, 4096 - 1);
 
5186          * Block runtime-pm until all consumers are added.
 
5187          * Refer ufshcd_setup_links().
 
5189         if (is_device_wlun(sdev))
 
5190                 pm_runtime_get_noresume(&sdev->sdev_gendev);
 
5191         else if (ufshcd_is_rpm_autosuspend_allowed(hba))
 
5192                 sdev->rpm_autosuspend = 1;
 
5194          * Do not print messages during runtime PM to avoid never-ending cycles
 
5195          * of messages written back to storage by user space causing runtime
 
5196          * resume, causing more messages and so on.
 
5198         sdev->silence_suspend = 1;
 
5200         ufshcd_crypto_register(hba, q);
 
5206  * ufshcd_slave_destroy - remove SCSI device configurations
 
5207  * @sdev: pointer to SCSI device
 
5209 static void ufshcd_slave_destroy(struct scsi_device *sdev)
 
5211         struct ufs_hba *hba;
 
5212         unsigned long flags;
 
5214         hba = shost_priv(sdev->host);
 
5216         ufshcd_hpb_destroy(hba, sdev);
 
5218         /* Drop the reference as it won't be needed anymore */
 
5219         if (ufshcd_scsi_to_upiu_lun(sdev->lun) == UFS_UPIU_UFS_DEVICE_WLUN) {
 
5220                 spin_lock_irqsave(hba->host->host_lock, flags);
 
5221                 hba->ufs_device_wlun = NULL;
 
5222                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
5223         } else if (hba->ufs_device_wlun) {
 
5224                 struct device *supplier = NULL;
 
5226                 /* Ensure UFS Device WLUN exists and does not disappear */
 
5227                 spin_lock_irqsave(hba->host->host_lock, flags);
 
5228                 if (hba->ufs_device_wlun) {
 
5229                         supplier = &hba->ufs_device_wlun->sdev_gendev;
 
5230                         get_device(supplier);
 
5232                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
5236                          * If a LUN fails to probe (e.g. absent BOOT WLUN), the
 
5237                          * device will not have been registered but can still
 
5238                          * have a device link holding a reference to the device.
 
5240                         device_link_remove(&sdev->sdev_gendev, supplier);
 
5241                         put_device(supplier);
 
5247  * ufshcd_scsi_cmd_status - Update SCSI command result based on SCSI status
 
5248  * @lrbp: pointer to local reference block of completed command
 
5249  * @scsi_status: SCSI command status
 
5251  * Returns value base on SCSI command status
 
5254 ufshcd_scsi_cmd_status(struct ufshcd_lrb *lrbp, int scsi_status)
 
5258         switch (scsi_status) {
 
5259         case SAM_STAT_CHECK_CONDITION:
 
5260                 ufshcd_copy_sense_data(lrbp);
 
5263                 result |= DID_OK << 16 | scsi_status;
 
5265         case SAM_STAT_TASK_SET_FULL:
 
5267         case SAM_STAT_TASK_ABORTED:
 
5268                 ufshcd_copy_sense_data(lrbp);
 
5269                 result |= scsi_status;
 
5272                 result |= DID_ERROR << 16;
 
5274         } /* end of switch */
 
5280  * ufshcd_transfer_rsp_status - Get overall status of the response
 
5281  * @hba: per adapter instance
 
5282  * @lrbp: pointer to local reference block of completed command
 
5283  * @cqe: pointer to the completion queue entry
 
5285  * Returns result of the command to notify SCSI midlayer
 
5288 ufshcd_transfer_rsp_status(struct ufs_hba *hba, struct ufshcd_lrb *lrbp,
 
5289                            struct cq_entry *cqe)
 
5295         scsi_set_resid(lrbp->cmd,
 
5296                 be32_to_cpu(lrbp->ucd_rsp_ptr->sr.residual_transfer_count));
 
5298         /* overall command status of utrd */
 
5299         ocs = ufshcd_get_tr_ocs(lrbp, cqe);
 
5301         if (hba->quirks & UFSHCD_QUIRK_BROKEN_OCS_FATAL_ERROR) {
 
5302                 if (be32_to_cpu(lrbp->ucd_rsp_ptr->header.dword_1) &
 
5303                                         MASK_RSP_UPIU_RESULT)
 
5309                 result = ufshcd_get_req_rsp(lrbp->ucd_rsp_ptr);
 
5310                 hba->ufs_stats.last_hibern8_exit_tstamp = ktime_set(0, 0);
 
5312                 case UPIU_TRANSACTION_RESPONSE:
 
5314                          * get the response UPIU result to extract
 
5315                          * the SCSI command status
 
5317                         result = ufshcd_get_rsp_upiu_result(lrbp->ucd_rsp_ptr);
 
5320                          * get the result based on SCSI status response
 
5321                          * to notify the SCSI midlayer of the command status
 
5323                         scsi_status = result & MASK_SCSI_STATUS;
 
5324                         result = ufshcd_scsi_cmd_status(lrbp, scsi_status);
 
5327                          * Currently we are only supporting BKOPs exception
 
5328                          * events hence we can ignore BKOPs exception event
 
5329                          * during power management callbacks. BKOPs exception
 
5330                          * event is not expected to be raised in runtime suspend
 
5331                          * callback as it allows the urgent bkops.
 
5332                          * During system suspend, we are anyway forcefully
 
5333                          * disabling the bkops and if urgent bkops is needed
 
5334                          * it will be enabled on system resume. Long term
 
5335                          * solution could be to abort the system suspend if
 
5336                          * UFS device needs urgent BKOPs.
 
5338                         if (!hba->pm_op_in_progress &&
 
5339                             !ufshcd_eh_in_progress(hba) &&
 
5340                             ufshcd_is_exception_event(lrbp->ucd_rsp_ptr))
 
5341                                 /* Flushed in suspend */
 
5342                                 schedule_work(&hba->eeh_work);
 
5344                         if (scsi_status == SAM_STAT_GOOD)
 
5345                                 ufshpb_rsp_upiu(hba, lrbp);
 
5347                 case UPIU_TRANSACTION_REJECT_UPIU:
 
5348                         /* TODO: handle Reject UPIU Response */
 
5349                         result = DID_ERROR << 16;
 
5351                                 "Reject UPIU not fully implemented\n");
 
5355                                 "Unexpected request response code = %x\n",
 
5357                         result = DID_ERROR << 16;
 
5362                 result |= DID_ABORT << 16;
 
5364         case OCS_INVALID_COMMAND_STATUS:
 
5365                 result |= DID_REQUEUE << 16;
 
5367         case OCS_INVALID_CMD_TABLE_ATTR:
 
5368         case OCS_INVALID_PRDT_ATTR:
 
5369         case OCS_MISMATCH_DATA_BUF_SIZE:
 
5370         case OCS_MISMATCH_RESP_UPIU_SIZE:
 
5371         case OCS_PEER_COMM_FAILURE:
 
5372         case OCS_FATAL_ERROR:
 
5373         case OCS_DEVICE_FATAL_ERROR:
 
5374         case OCS_INVALID_CRYPTO_CONFIG:
 
5375         case OCS_GENERAL_CRYPTO_ERROR:
 
5377                 result |= DID_ERROR << 16;
 
5379                                 "OCS error from controller = %x for tag %d\n",
 
5380                                 ocs, lrbp->task_tag);
 
5381                 ufshcd_print_evt_hist(hba);
 
5382                 ufshcd_print_host_state(hba);
 
5384         } /* end of switch */
 
5386         if ((host_byte(result) != DID_OK) &&
 
5387             (host_byte(result) != DID_REQUEUE) && !hba->silence_err_logs)
 
5388                 ufshcd_print_tr(hba, lrbp->task_tag, true);
 
5392 static bool ufshcd_is_auto_hibern8_error(struct ufs_hba *hba,
 
5395         if (!ufshcd_is_auto_hibern8_supported(hba) ||
 
5396             !ufshcd_is_auto_hibern8_enabled(hba))
 
5399         if (!(intr_mask & UFSHCD_UIC_HIBERN8_MASK))
 
5402         if (hba->active_uic_cmd &&
 
5403             (hba->active_uic_cmd->command == UIC_CMD_DME_HIBER_ENTER ||
 
5404             hba->active_uic_cmd->command == UIC_CMD_DME_HIBER_EXIT))
 
5411  * ufshcd_uic_cmd_compl - handle completion of uic command
 
5412  * @hba: per adapter instance
 
5413  * @intr_status: interrupt status generated by the controller
 
5416  *  IRQ_HANDLED - If interrupt is valid
 
5417  *  IRQ_NONE    - If invalid interrupt
 
5419 static irqreturn_t ufshcd_uic_cmd_compl(struct ufs_hba *hba, u32 intr_status)
 
5421         irqreturn_t retval = IRQ_NONE;
 
5423         spin_lock(hba->host->host_lock);
 
5424         if (ufshcd_is_auto_hibern8_error(hba, intr_status))
 
5425                 hba->errors |= (UFSHCD_UIC_HIBERN8_MASK & intr_status);
 
5427         if ((intr_status & UIC_COMMAND_COMPL) && hba->active_uic_cmd) {
 
5428                 hba->active_uic_cmd->argument2 |=
 
5429                         ufshcd_get_uic_cmd_result(hba);
 
5430                 hba->active_uic_cmd->argument3 =
 
5431                         ufshcd_get_dme_attr_val(hba);
 
5432                 if (!hba->uic_async_done)
 
5433                         hba->active_uic_cmd->cmd_active = 0;
 
5434                 complete(&hba->active_uic_cmd->done);
 
5435                 retval = IRQ_HANDLED;
 
5438         if ((intr_status & UFSHCD_UIC_PWR_MASK) && hba->uic_async_done) {
 
5439                 hba->active_uic_cmd->cmd_active = 0;
 
5440                 complete(hba->uic_async_done);
 
5441                 retval = IRQ_HANDLED;
 
5444         if (retval == IRQ_HANDLED)
 
5445                 ufshcd_add_uic_command_trace(hba, hba->active_uic_cmd,
 
5447         spin_unlock(hba->host->host_lock);
 
5451 /* Release the resources allocated for processing a SCSI command. */
 
5452 void ufshcd_release_scsi_cmd(struct ufs_hba *hba,
 
5453                              struct ufshcd_lrb *lrbp)
 
5455         struct scsi_cmnd *cmd = lrbp->cmd;
 
5457         scsi_dma_unmap(cmd);
 
5458         lrbp->cmd = NULL;       /* Mark the command as completed. */
 
5459         ufshcd_release(hba);
 
5460         ufshcd_clk_scaling_update_busy(hba);
 
5464  * ufshcd_compl_one_cqe - handle a completion queue entry
 
5465  * @hba: per adapter instance
 
5466  * @task_tag: the task tag of the request to be completed
 
5467  * @cqe: pointer to the completion queue entry
 
5469 void ufshcd_compl_one_cqe(struct ufs_hba *hba, int task_tag,
 
5470                           struct cq_entry *cqe)
 
5472         struct ufshcd_lrb *lrbp;
 
5473         struct scsi_cmnd *cmd;
 
5475         lrbp = &hba->lrb[task_tag];
 
5476         lrbp->compl_time_stamp = ktime_get();
 
5479                 if (unlikely(ufshcd_should_inform_monitor(hba, lrbp)))
 
5480                         ufshcd_update_monitor(hba, lrbp);
 
5481                 ufshcd_add_command_trace(hba, task_tag, UFS_CMD_COMP);
 
5482                 cmd->result = ufshcd_transfer_rsp_status(hba, lrbp, cqe);
 
5483                 ufshcd_release_scsi_cmd(hba, lrbp);
 
5484                 /* Do not touch lrbp after scsi done */
 
5486         } else if (lrbp->command_type == UTP_CMD_TYPE_DEV_MANAGE ||
 
5487                    lrbp->command_type == UTP_CMD_TYPE_UFS_STORAGE) {
 
5488                 if (hba->dev_cmd.complete) {
 
5489                         hba->dev_cmd.cqe = cqe;
 
5490                         ufshcd_add_command_trace(hba, task_tag, UFS_DEV_COMP);
 
5491                         complete(hba->dev_cmd.complete);
 
5492                         ufshcd_clk_scaling_update_busy(hba);
 
5498  * __ufshcd_transfer_req_compl - handle SCSI and query command completion
 
5499  * @hba: per adapter instance
 
5500  * @completed_reqs: bitmask that indicates which requests to complete
 
5502 static void __ufshcd_transfer_req_compl(struct ufs_hba *hba,
 
5503                                         unsigned long completed_reqs)
 
5507         for_each_set_bit(tag, &completed_reqs, hba->nutrs)
 
5508                 ufshcd_compl_one_cqe(hba, tag, NULL);
 
5511 /* Any value that is not an existing queue number is fine for this constant. */
 
5513         UFSHCD_POLL_FROM_INTERRUPT_CONTEXT = -1
 
5516 static void ufshcd_clear_polled(struct ufs_hba *hba,
 
5517                                 unsigned long *completed_reqs)
 
5521         for_each_set_bit(tag, completed_reqs, hba->nutrs) {
 
5522                 struct scsi_cmnd *cmd = hba->lrb[tag].cmd;
 
5526                 if (scsi_cmd_to_rq(cmd)->cmd_flags & REQ_POLLED)
 
5527                         __clear_bit(tag, completed_reqs);
 
5532  * Returns > 0 if one or more commands have been completed or 0 if no
 
5533  * requests have been completed.
 
5535 static int ufshcd_poll(struct Scsi_Host *shost, unsigned int queue_num)
 
5537         struct ufs_hba *hba = shost_priv(shost);
 
5538         unsigned long completed_reqs, flags;
 
5540         struct ufs_hw_queue *hwq;
 
5542         if (is_mcq_enabled(hba)) {
 
5543                 hwq = &hba->uhq[queue_num + UFSHCD_MCQ_IO_QUEUE_OFFSET];
 
5545                 return ufshcd_mcq_poll_cqe_lock(hba, hwq);
 
5548         spin_lock_irqsave(&hba->outstanding_lock, flags);
 
5549         tr_doorbell = ufshcd_readl(hba, REG_UTP_TRANSFER_REQ_DOOR_BELL);
 
5550         completed_reqs = ~tr_doorbell & hba->outstanding_reqs;
 
5551         WARN_ONCE(completed_reqs & ~hba->outstanding_reqs,
 
5552                   "completed: %#lx; outstanding: %#lx\n", completed_reqs,
 
5553                   hba->outstanding_reqs);
 
5554         if (queue_num == UFSHCD_POLL_FROM_INTERRUPT_CONTEXT) {
 
5555                 /* Do not complete polled requests from interrupt context. */
 
5556                 ufshcd_clear_polled(hba, &completed_reqs);
 
5558         hba->outstanding_reqs &= ~completed_reqs;
 
5559         spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
5562                 __ufshcd_transfer_req_compl(hba, completed_reqs);
 
5564         return completed_reqs != 0;
 
5568  * ufshcd_transfer_req_compl - handle SCSI and query command completion
 
5569  * @hba: per adapter instance
 
5572  *  IRQ_HANDLED - If interrupt is valid
 
5573  *  IRQ_NONE    - If invalid interrupt
 
5575 static irqreturn_t ufshcd_transfer_req_compl(struct ufs_hba *hba)
 
5577         /* Resetting interrupt aggregation counters first and reading the
 
5578          * DOOR_BELL afterward allows us to handle all the completed requests.
 
5579          * In order to prevent other interrupts starvation the DB is read once
 
5580          * after reset. The down side of this solution is the possibility of
 
5581          * false interrupt if device completes another request after resetting
 
5582          * aggregation and before reading the DB.
 
5584         if (ufshcd_is_intr_aggr_allowed(hba) &&
 
5585             !(hba->quirks & UFSHCI_QUIRK_SKIP_RESET_INTR_AGGR))
 
5586                 ufshcd_reset_intr_aggr(hba);
 
5588         if (ufs_fail_completion())
 
5592          * Ignore the ufshcd_poll() return value and return IRQ_HANDLED since we
 
5593          * do not want polling to trigger spurious interrupt complaints.
 
5595         ufshcd_poll(hba->host, UFSHCD_POLL_FROM_INTERRUPT_CONTEXT);
 
5600 int __ufshcd_write_ee_control(struct ufs_hba *hba, u32 ee_ctrl_mask)
 
5602         return ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
 
5603                                        QUERY_ATTR_IDN_EE_CONTROL, 0, 0,
 
5607 int ufshcd_write_ee_control(struct ufs_hba *hba)
 
5611         mutex_lock(&hba->ee_ctrl_mutex);
 
5612         err = __ufshcd_write_ee_control(hba, hba->ee_ctrl_mask);
 
5613         mutex_unlock(&hba->ee_ctrl_mutex);
 
5615                 dev_err(hba->dev, "%s: failed to write ee control %d\n",
 
5620 int ufshcd_update_ee_control(struct ufs_hba *hba, u16 *mask,
 
5621                              const u16 *other_mask, u16 set, u16 clr)
 
5623         u16 new_mask, ee_ctrl_mask;
 
5626         mutex_lock(&hba->ee_ctrl_mutex);
 
5627         new_mask = (*mask & ~clr) | set;
 
5628         ee_ctrl_mask = new_mask | *other_mask;
 
5629         if (ee_ctrl_mask != hba->ee_ctrl_mask)
 
5630                 err = __ufshcd_write_ee_control(hba, ee_ctrl_mask);
 
5631         /* Still need to update 'mask' even if 'ee_ctrl_mask' was unchanged */
 
5633                 hba->ee_ctrl_mask = ee_ctrl_mask;
 
5636         mutex_unlock(&hba->ee_ctrl_mutex);
 
5641  * ufshcd_disable_ee - disable exception event
 
5642  * @hba: per-adapter instance
 
5643  * @mask: exception event to disable
 
5645  * Disables exception event in the device so that the EVENT_ALERT
 
5648  * Returns zero on success, non-zero error value on failure.
 
5650 static inline int ufshcd_disable_ee(struct ufs_hba *hba, u16 mask)
 
5652         return ufshcd_update_ee_drv_mask(hba, 0, mask);
 
5656  * ufshcd_enable_ee - enable exception event
 
5657  * @hba: per-adapter instance
 
5658  * @mask: exception event to enable
 
5660  * Enable corresponding exception event in the device to allow
 
5661  * device to alert host in critical scenarios.
 
5663  * Returns zero on success, non-zero error value on failure.
 
5665 static inline int ufshcd_enable_ee(struct ufs_hba *hba, u16 mask)
 
5667         return ufshcd_update_ee_drv_mask(hba, mask, 0);
 
5671  * ufshcd_enable_auto_bkops - Allow device managed BKOPS
 
5672  * @hba: per-adapter instance
 
5674  * Allow device to manage background operations on its own. Enabling
 
5675  * this might lead to inconsistent latencies during normal data transfers
 
5676  * as the device is allowed to manage its own way of handling background
 
5679  * Returns zero on success, non-zero on failure.
 
5681 static int ufshcd_enable_auto_bkops(struct ufs_hba *hba)
 
5685         if (hba->auto_bkops_enabled)
 
5688         err = ufshcd_query_flag_retry(hba, UPIU_QUERY_OPCODE_SET_FLAG,
 
5689                         QUERY_FLAG_IDN_BKOPS_EN, 0, NULL);
 
5691                 dev_err(hba->dev, "%s: failed to enable bkops %d\n",
 
5696         hba->auto_bkops_enabled = true;
 
5697         trace_ufshcd_auto_bkops_state(dev_name(hba->dev), "Enabled");
 
5699         /* No need of URGENT_BKOPS exception from the device */
 
5700         err = ufshcd_disable_ee(hba, MASK_EE_URGENT_BKOPS);
 
5702                 dev_err(hba->dev, "%s: failed to disable exception event %d\n",
 
5709  * ufshcd_disable_auto_bkops - block device in doing background operations
 
5710  * @hba: per-adapter instance
 
5712  * Disabling background operations improves command response latency but
 
5713  * has drawback of device moving into critical state where the device is
 
5714  * not-operable. Make sure to call ufshcd_enable_auto_bkops() whenever the
 
5715  * host is idle so that BKOPS are managed effectively without any negative
 
5718  * Returns zero on success, non-zero on failure.
 
5720 static int ufshcd_disable_auto_bkops(struct ufs_hba *hba)
 
5724         if (!hba->auto_bkops_enabled)
 
5728          * If host assisted BKOPs is to be enabled, make sure
 
5729          * urgent bkops exception is allowed.
 
5731         err = ufshcd_enable_ee(hba, MASK_EE_URGENT_BKOPS);
 
5733                 dev_err(hba->dev, "%s: failed to enable exception event %d\n",
 
5738         err = ufshcd_query_flag_retry(hba, UPIU_QUERY_OPCODE_CLEAR_FLAG,
 
5739                         QUERY_FLAG_IDN_BKOPS_EN, 0, NULL);
 
5741                 dev_err(hba->dev, "%s: failed to disable bkops %d\n",
 
5743                 ufshcd_disable_ee(hba, MASK_EE_URGENT_BKOPS);
 
5747         hba->auto_bkops_enabled = false;
 
5748         trace_ufshcd_auto_bkops_state(dev_name(hba->dev), "Disabled");
 
5749         hba->is_urgent_bkops_lvl_checked = false;
 
5755  * ufshcd_force_reset_auto_bkops - force reset auto bkops state
 
5756  * @hba: per adapter instance
 
5758  * After a device reset the device may toggle the BKOPS_EN flag
 
5759  * to default value. The s/w tracking variables should be updated
 
5760  * as well. This function would change the auto-bkops state based on
 
5761  * UFSHCD_CAP_KEEP_AUTO_BKOPS_ENABLED_EXCEPT_SUSPEND.
 
5763 static void ufshcd_force_reset_auto_bkops(struct ufs_hba *hba)
 
5765         if (ufshcd_keep_autobkops_enabled_except_suspend(hba)) {
 
5766                 hba->auto_bkops_enabled = false;
 
5767                 hba->ee_ctrl_mask |= MASK_EE_URGENT_BKOPS;
 
5768                 ufshcd_enable_auto_bkops(hba);
 
5770                 hba->auto_bkops_enabled = true;
 
5771                 hba->ee_ctrl_mask &= ~MASK_EE_URGENT_BKOPS;
 
5772                 ufshcd_disable_auto_bkops(hba);
 
5774         hba->urgent_bkops_lvl = BKOPS_STATUS_PERF_IMPACT;
 
5775         hba->is_urgent_bkops_lvl_checked = false;
 
5778 static inline int ufshcd_get_bkops_status(struct ufs_hba *hba, u32 *status)
 
5780         return ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
5781                         QUERY_ATTR_IDN_BKOPS_STATUS, 0, 0, status);
 
5785  * ufshcd_bkops_ctrl - control the auto bkops based on current bkops status
 
5786  * @hba: per-adapter instance
 
5787  * @status: bkops_status value
 
5789  * Read the bkops_status from the UFS device and Enable fBackgroundOpsEn
 
5790  * flag in the device to permit background operations if the device
 
5791  * bkops_status is greater than or equal to "status" argument passed to
 
5792  * this function, disable otherwise.
 
5794  * Returns 0 for success, non-zero in case of failure.
 
5796  * NOTE: Caller of this function can check the "hba->auto_bkops_enabled" flag
 
5797  * to know whether auto bkops is enabled or disabled after this function
 
5798  * returns control to it.
 
5800 static int ufshcd_bkops_ctrl(struct ufs_hba *hba,
 
5801                              enum bkops_status status)
 
5804         u32 curr_status = 0;
 
5806         err = ufshcd_get_bkops_status(hba, &curr_status);
 
5808                 dev_err(hba->dev, "%s: failed to get BKOPS status %d\n",
 
5811         } else if (curr_status > BKOPS_STATUS_MAX) {
 
5812                 dev_err(hba->dev, "%s: invalid BKOPS status %d\n",
 
5813                                 __func__, curr_status);
 
5818         if (curr_status >= status)
 
5819                 err = ufshcd_enable_auto_bkops(hba);
 
5821                 err = ufshcd_disable_auto_bkops(hba);
 
5827  * ufshcd_urgent_bkops - handle urgent bkops exception event
 
5828  * @hba: per-adapter instance
 
5830  * Enable fBackgroundOpsEn flag in the device to permit background
 
5833  * If BKOPs is enabled, this function returns 0, 1 if the bkops in not enabled
 
5834  * and negative error value for any other failure.
 
5836 static int ufshcd_urgent_bkops(struct ufs_hba *hba)
 
5838         return ufshcd_bkops_ctrl(hba, hba->urgent_bkops_lvl);
 
5841 static inline int ufshcd_get_ee_status(struct ufs_hba *hba, u32 *status)
 
5843         return ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
5844                         QUERY_ATTR_IDN_EE_STATUS, 0, 0, status);
 
5847 static void ufshcd_bkops_exception_event_handler(struct ufs_hba *hba)
 
5850         u32 curr_status = 0;
 
5852         if (hba->is_urgent_bkops_lvl_checked)
 
5853                 goto enable_auto_bkops;
 
5855         err = ufshcd_get_bkops_status(hba, &curr_status);
 
5857                 dev_err(hba->dev, "%s: failed to get BKOPS status %d\n",
 
5863          * We are seeing that some devices are raising the urgent bkops
 
5864          * exception events even when BKOPS status doesn't indicate performace
 
5865          * impacted or critical. Handle these device by determining their urgent
 
5866          * bkops status at runtime.
 
5868         if (curr_status < BKOPS_STATUS_PERF_IMPACT) {
 
5869                 dev_err(hba->dev, "%s: device raised urgent BKOPS exception for bkops status %d\n",
 
5870                                 __func__, curr_status);
 
5871                 /* update the current status as the urgent bkops level */
 
5872                 hba->urgent_bkops_lvl = curr_status;
 
5873                 hba->is_urgent_bkops_lvl_checked = true;
 
5877         err = ufshcd_enable_auto_bkops(hba);
 
5880                 dev_err(hba->dev, "%s: failed to handle urgent bkops %d\n",
 
5884 static void ufshcd_temp_exception_event_handler(struct ufs_hba *hba, u16 status)
 
5888         if (ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
5889                                 QUERY_ATTR_IDN_CASE_ROUGH_TEMP, 0, 0, &value))
 
5892         dev_info(hba->dev, "exception Tcase %d\n", value - 80);
 
5894         ufs_hwmon_notify_event(hba, status & MASK_EE_URGENT_TEMP);
 
5897          * A placeholder for the platform vendors to add whatever additional
 
5902 static int __ufshcd_wb_toggle(struct ufs_hba *hba, bool set, enum flag_idn idn)
 
5905         enum query_opcode opcode = set ? UPIU_QUERY_OPCODE_SET_FLAG :
 
5906                                    UPIU_QUERY_OPCODE_CLEAR_FLAG;
 
5908         index = ufshcd_wb_get_query_index(hba);
 
5909         return ufshcd_query_flag_retry(hba, opcode, idn, index, NULL);
 
5912 int ufshcd_wb_toggle(struct ufs_hba *hba, bool enable)
 
5916         if (!ufshcd_is_wb_allowed(hba) ||
 
5917             hba->dev_info.wb_enabled == enable)
 
5920         ret = __ufshcd_wb_toggle(hba, enable, QUERY_FLAG_IDN_WB_EN);
 
5922                 dev_err(hba->dev, "%s: Write Booster %s failed %d\n",
 
5923                         __func__, enable ? "enabling" : "disabling", ret);
 
5927         hba->dev_info.wb_enabled = enable;
 
5928         dev_dbg(hba->dev, "%s: Write Booster %s\n",
 
5929                         __func__, enable ? "enabled" : "disabled");
 
5934 static void ufshcd_wb_toggle_buf_flush_during_h8(struct ufs_hba *hba,
 
5939         ret = __ufshcd_wb_toggle(hba, enable,
 
5940                         QUERY_FLAG_IDN_WB_BUFF_FLUSH_DURING_HIBERN8);
 
5942                 dev_err(hba->dev, "%s: WB-Buf Flush during H8 %s failed %d\n",
 
5943                         __func__, enable ? "enabling" : "disabling", ret);
 
5946         dev_dbg(hba->dev, "%s: WB-Buf Flush during H8 %s\n",
 
5947                         __func__, enable ? "enabled" : "disabled");
 
5950 int ufshcd_wb_toggle_buf_flush(struct ufs_hba *hba, bool enable)
 
5954         if (!ufshcd_is_wb_allowed(hba) ||
 
5955             hba->dev_info.wb_buf_flush_enabled == enable)
 
5958         ret = __ufshcd_wb_toggle(hba, enable, QUERY_FLAG_IDN_WB_BUFF_FLUSH_EN);
 
5960                 dev_err(hba->dev, "%s: WB-Buf Flush %s failed %d\n",
 
5961                         __func__, enable ? "enabling" : "disabling", ret);
 
5965         hba->dev_info.wb_buf_flush_enabled = enable;
 
5966         dev_dbg(hba->dev, "%s: WB-Buf Flush %s\n",
 
5967                         __func__, enable ? "enabled" : "disabled");
 
5972 static bool ufshcd_wb_presrv_usrspc_keep_vcc_on(struct ufs_hba *hba,
 
5979         index = ufshcd_wb_get_query_index(hba);
 
5980         ret = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
5981                                               QUERY_ATTR_IDN_CURR_WB_BUFF_SIZE,
 
5982                                               index, 0, &cur_buf);
 
5984                 dev_err(hba->dev, "%s: dCurWriteBoosterBufferSize read failed %d\n",
 
5990                 dev_info(hba->dev, "dCurWBBuf: %d WB disabled until free-space is available\n",
 
5994         /* Let it continue to flush when available buffer exceeds threshold */
 
5995         return avail_buf < hba->vps->wb_flush_threshold;
 
5998 static void ufshcd_wb_force_disable(struct ufs_hba *hba)
 
6000         if (ufshcd_is_wb_buf_flush_allowed(hba))
 
6001                 ufshcd_wb_toggle_buf_flush(hba, false);
 
6003         ufshcd_wb_toggle_buf_flush_during_h8(hba, false);
 
6004         ufshcd_wb_toggle(hba, false);
 
6005         hba->caps &= ~UFSHCD_CAP_WB_EN;
 
6007         dev_info(hba->dev, "%s: WB force disabled\n", __func__);
 
6010 static bool ufshcd_is_wb_buf_lifetime_available(struct ufs_hba *hba)
 
6016         index = ufshcd_wb_get_query_index(hba);
 
6017         ret = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
6018                                       QUERY_ATTR_IDN_WB_BUFF_LIFE_TIME_EST,
 
6019                                       index, 0, &lifetime);
 
6022                         "%s: bWriteBoosterBufferLifeTimeEst read failed %d\n",
 
6027         if (lifetime == UFS_WB_EXCEED_LIFETIME) {
 
6028                 dev_err(hba->dev, "%s: WB buf lifetime is exhausted 0x%02X\n",
 
6029                         __func__, lifetime);
 
6033         dev_dbg(hba->dev, "%s: WB buf lifetime is 0x%02X\n",
 
6034                 __func__, lifetime);
 
6039 static bool ufshcd_wb_need_flush(struct ufs_hba *hba)
 
6045         if (!ufshcd_is_wb_allowed(hba))
 
6048         if (!ufshcd_is_wb_buf_lifetime_available(hba)) {
 
6049                 ufshcd_wb_force_disable(hba);
 
6054          * The ufs device needs the vcc to be ON to flush.
 
6055          * With user-space reduction enabled, it's enough to enable flush
 
6056          * by checking only the available buffer. The threshold
 
6057          * defined here is > 90% full.
 
6058          * With user-space preserved enabled, the current-buffer
 
6059          * should be checked too because the wb buffer size can reduce
 
6060          * when disk tends to be full. This info is provided by current
 
6061          * buffer (dCurrentWriteBoosterBufferSize). There's no point in
 
6062          * keeping vcc on when current buffer is empty.
 
6064         index = ufshcd_wb_get_query_index(hba);
 
6065         ret = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
6066                                       QUERY_ATTR_IDN_AVAIL_WB_BUFF_SIZE,
 
6067                                       index, 0, &avail_buf);
 
6069                 dev_warn(hba->dev, "%s: dAvailableWriteBoosterBufferSize read failed %d\n",
 
6074         if (!hba->dev_info.b_presrv_uspc_en)
 
6075                 return avail_buf <= UFS_WB_BUF_REMAIN_PERCENT(10);
 
6077         return ufshcd_wb_presrv_usrspc_keep_vcc_on(hba, avail_buf);
 
6080 static void ufshcd_rpm_dev_flush_recheck_work(struct work_struct *work)
 
6082         struct ufs_hba *hba = container_of(to_delayed_work(work),
 
6084                                            rpm_dev_flush_recheck_work);
 
6086          * To prevent unnecessary VCC power drain after device finishes
 
6087          * WriteBooster buffer flush or Auto BKOPs, force runtime resume
 
6088          * after a certain delay to recheck the threshold by next runtime
 
6091         ufshcd_rpm_get_sync(hba);
 
6092         ufshcd_rpm_put_sync(hba);
 
6096  * ufshcd_exception_event_handler - handle exceptions raised by device
 
6097  * @work: pointer to work data
 
6099  * Read bExceptionEventStatus attribute from the device and handle the
 
6100  * exception event accordingly.
 
6102 static void ufshcd_exception_event_handler(struct work_struct *work)
 
6104         struct ufs_hba *hba;
 
6107         hba = container_of(work, struct ufs_hba, eeh_work);
 
6109         ufshcd_scsi_block_requests(hba);
 
6110         err = ufshcd_get_ee_status(hba, &status);
 
6112                 dev_err(hba->dev, "%s: failed to get exception status %d\n",
 
6117         trace_ufshcd_exception_event(dev_name(hba->dev), status);
 
6119         if (status & hba->ee_drv_mask & MASK_EE_URGENT_BKOPS)
 
6120                 ufshcd_bkops_exception_event_handler(hba);
 
6122         if (status & hba->ee_drv_mask & MASK_EE_URGENT_TEMP)
 
6123                 ufshcd_temp_exception_event_handler(hba, status);
 
6125         ufs_debugfs_exception_event(hba, status);
 
6127         ufshcd_scsi_unblock_requests(hba);
 
6130 /* Complete requests that have door-bell cleared */
 
6131 static void ufshcd_complete_requests(struct ufs_hba *hba)
 
6133         ufshcd_transfer_req_compl(hba);
 
6134         ufshcd_tmc_handler(hba);
 
6138  * ufshcd_quirk_dl_nac_errors - This function checks if error handling is
 
6139  *                              to recover from the DL NAC errors or not.
 
6140  * @hba: per-adapter instance
 
6142  * Returns true if error handling is required, false otherwise
 
6144 static bool ufshcd_quirk_dl_nac_errors(struct ufs_hba *hba)
 
6146         unsigned long flags;
 
6147         bool err_handling = true;
 
6149         spin_lock_irqsave(hba->host->host_lock, flags);
 
6151          * UFS_DEVICE_QUIRK_RECOVERY_FROM_DL_NAC_ERRORS only workaround the
 
6152          * device fatal error and/or DL NAC & REPLAY timeout errors.
 
6154         if (hba->saved_err & (CONTROLLER_FATAL_ERROR | SYSTEM_BUS_FATAL_ERROR))
 
6157         if ((hba->saved_err & DEVICE_FATAL_ERROR) ||
 
6158             ((hba->saved_err & UIC_ERROR) &&
 
6159              (hba->saved_uic_err & UFSHCD_UIC_DL_TCx_REPLAY_ERROR)))
 
6162         if ((hba->saved_err & UIC_ERROR) &&
 
6163             (hba->saved_uic_err & UFSHCD_UIC_DL_NAC_RECEIVED_ERROR)) {
 
6166                  * wait for 50ms to see if we can get any other errors or not.
 
6168                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6170                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6173                  * now check if we have got any other severe errors other than
 
6176                 if ((hba->saved_err & INT_FATAL_ERRORS) ||
 
6177                     ((hba->saved_err & UIC_ERROR) &&
 
6178                     (hba->saved_uic_err & ~UFSHCD_UIC_DL_NAC_RECEIVED_ERROR)))
 
6182                  * As DL NAC is the only error received so far, send out NOP
 
6183                  * command to confirm if link is still active or not.
 
6184                  *   - If we don't get any response then do error recovery.
 
6185                  *   - If we get response then clear the DL NAC error bit.
 
6188                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6189                 err = ufshcd_verify_dev_init(hba);
 
6190                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6195                 /* Link seems to be alive hence ignore the DL NAC errors */
 
6196                 if (hba->saved_uic_err == UFSHCD_UIC_DL_NAC_RECEIVED_ERROR)
 
6197                         hba->saved_err &= ~UIC_ERROR;
 
6198                 /* clear NAC error */
 
6199                 hba->saved_uic_err &= ~UFSHCD_UIC_DL_NAC_RECEIVED_ERROR;
 
6200                 if (!hba->saved_uic_err)
 
6201                         err_handling = false;
 
6204         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6205         return err_handling;
 
6208 /* host lock must be held before calling this func */
 
6209 static inline bool ufshcd_is_saved_err_fatal(struct ufs_hba *hba)
 
6211         return (hba->saved_uic_err & UFSHCD_UIC_DL_PA_INIT_ERROR) ||
 
6212                (hba->saved_err & (INT_FATAL_ERRORS | UFSHCD_UIC_HIBERN8_MASK));
 
6215 void ufshcd_schedule_eh_work(struct ufs_hba *hba)
 
6217         lockdep_assert_held(hba->host->host_lock);
 
6219         /* handle fatal errors only when link is not in error state */
 
6220         if (hba->ufshcd_state != UFSHCD_STATE_ERROR) {
 
6221                 if (hba->force_reset || ufshcd_is_link_broken(hba) ||
 
6222                     ufshcd_is_saved_err_fatal(hba))
 
6223                         hba->ufshcd_state = UFSHCD_STATE_EH_SCHEDULED_FATAL;
 
6225                         hba->ufshcd_state = UFSHCD_STATE_EH_SCHEDULED_NON_FATAL;
 
6226                 queue_work(hba->eh_wq, &hba->eh_work);
 
6230 static void ufshcd_force_error_recovery(struct ufs_hba *hba)
 
6232         spin_lock_irq(hba->host->host_lock);
 
6233         hba->force_reset = true;
 
6234         ufshcd_schedule_eh_work(hba);
 
6235         spin_unlock_irq(hba->host->host_lock);
 
6238 static void ufshcd_clk_scaling_allow(struct ufs_hba *hba, bool allow)
 
6240         mutex_lock(&hba->wb_mutex);
 
6241         down_write(&hba->clk_scaling_lock);
 
6242         hba->clk_scaling.is_allowed = allow;
 
6243         up_write(&hba->clk_scaling_lock);
 
6244         mutex_unlock(&hba->wb_mutex);
 
6247 static void ufshcd_clk_scaling_suspend(struct ufs_hba *hba, bool suspend)
 
6250                 if (hba->clk_scaling.is_enabled)
 
6251                         ufshcd_suspend_clkscaling(hba);
 
6252                 ufshcd_clk_scaling_allow(hba, false);
 
6254                 ufshcd_clk_scaling_allow(hba, true);
 
6255                 if (hba->clk_scaling.is_enabled)
 
6256                         ufshcd_resume_clkscaling(hba);
 
6260 static void ufshcd_err_handling_prepare(struct ufs_hba *hba)
 
6262         ufshcd_rpm_get_sync(hba);
 
6263         if (pm_runtime_status_suspended(&hba->ufs_device_wlun->sdev_gendev) ||
 
6264             hba->is_sys_suspended) {
 
6265                 enum ufs_pm_op pm_op;
 
6268                  * Don't assume anything of resume, if
 
6269                  * resume fails, irq and clocks can be OFF, and powers
 
6270                  * can be OFF or in LPM.
 
6272                 ufshcd_setup_hba_vreg(hba, true);
 
6273                 ufshcd_enable_irq(hba);
 
6274                 ufshcd_setup_vreg(hba, true);
 
6275                 ufshcd_config_vreg_hpm(hba, hba->vreg_info.vccq);
 
6276                 ufshcd_config_vreg_hpm(hba, hba->vreg_info.vccq2);
 
6277                 ufshcd_hold(hba, false);
 
6278                 if (!ufshcd_is_clkgating_allowed(hba))
 
6279                         ufshcd_setup_clocks(hba, true);
 
6280                 ufshcd_release(hba);
 
6281                 pm_op = hba->is_sys_suspended ? UFS_SYSTEM_PM : UFS_RUNTIME_PM;
 
6282                 ufshcd_vops_resume(hba, pm_op);
 
6284                 ufshcd_hold(hba, false);
 
6285                 if (ufshcd_is_clkscaling_supported(hba) &&
 
6286                     hba->clk_scaling.is_enabled)
 
6287                         ufshcd_suspend_clkscaling(hba);
 
6288                 ufshcd_clk_scaling_allow(hba, false);
 
6290         ufshcd_scsi_block_requests(hba);
 
6291         /* Drain ufshcd_queuecommand() */
 
6293         cancel_work_sync(&hba->eeh_work);
 
6296 static void ufshcd_err_handling_unprepare(struct ufs_hba *hba)
 
6298         ufshcd_scsi_unblock_requests(hba);
 
6299         ufshcd_release(hba);
 
6300         if (ufshcd_is_clkscaling_supported(hba))
 
6301                 ufshcd_clk_scaling_suspend(hba, false);
 
6302         ufshcd_rpm_put(hba);
 
6305 static inline bool ufshcd_err_handling_should_stop(struct ufs_hba *hba)
 
6307         return (!hba->is_powered || hba->shutting_down ||
 
6308                 !hba->ufs_device_wlun ||
 
6309                 hba->ufshcd_state == UFSHCD_STATE_ERROR ||
 
6310                 (!(hba->saved_err || hba->saved_uic_err || hba->force_reset ||
 
6311                    ufshcd_is_link_broken(hba))));
 
6315 static void ufshcd_recover_pm_error(struct ufs_hba *hba)
 
6317         struct Scsi_Host *shost = hba->host;
 
6318         struct scsi_device *sdev;
 
6319         struct request_queue *q;
 
6322         hba->is_sys_suspended = false;
 
6324          * Set RPM status of wlun device to RPM_ACTIVE,
 
6325          * this also clears its runtime error.
 
6327         ret = pm_runtime_set_active(&hba->ufs_device_wlun->sdev_gendev);
 
6329         /* hba device might have a runtime error otherwise */
 
6331                 ret = pm_runtime_set_active(hba->dev);
 
6333          * If wlun device had runtime error, we also need to resume those
 
6334          * consumer scsi devices in case any of them has failed to be
 
6335          * resumed due to supplier runtime resume failure. This is to unblock
 
6336          * blk_queue_enter in case there are bios waiting inside it.
 
6339                 shost_for_each_device(sdev, shost) {
 
6340                         q = sdev->request_queue;
 
6341                         if (q->dev && (q->rpm_status == RPM_SUSPENDED ||
 
6342                                        q->rpm_status == RPM_SUSPENDING))
 
6343                                 pm_request_resume(q->dev);
 
6348 static inline void ufshcd_recover_pm_error(struct ufs_hba *hba)
 
6353 static bool ufshcd_is_pwr_mode_restore_needed(struct ufs_hba *hba)
 
6355         struct ufs_pa_layer_attr *pwr_info = &hba->pwr_info;
 
6358         ufshcd_dme_get(hba, UIC_ARG_MIB(PA_PWRMODE), &mode);
 
6360         if (pwr_info->pwr_rx != ((mode >> PWRMODE_RX_OFFSET) & PWRMODE_MASK))
 
6363         if (pwr_info->pwr_tx != (mode & PWRMODE_MASK))
 
6369 static bool ufshcd_abort_all(struct ufs_hba *hba)
 
6371         bool needs_reset = false;
 
6374         /* Clear pending transfer requests */
 
6375         for_each_set_bit(tag, &hba->outstanding_reqs, hba->nutrs) {
 
6376                 ret = ufshcd_try_to_abort_task(hba, tag);
 
6377                 dev_err(hba->dev, "Aborting tag %d / CDB %#02x %s\n", tag,
 
6378                         hba->lrb[tag].cmd ? hba->lrb[tag].cmd->cmnd[0] : -1,
 
6379                         ret ? "failed" : "succeeded");
 
6386         /* Clear pending task management requests */
 
6387         for_each_set_bit(tag, &hba->outstanding_tasks, hba->nutmrs) {
 
6388                 if (ufshcd_clear_tm_cmd(hba, tag)) {
 
6395         /* Complete the requests that are cleared by s/w */
 
6396         ufshcd_complete_requests(hba);
 
6402  * ufshcd_err_handler - handle UFS errors that require s/w attention
 
6403  * @work: pointer to work structure
 
6405 static void ufshcd_err_handler(struct work_struct *work)
 
6407         int retries = MAX_ERR_HANDLER_RETRIES;
 
6408         struct ufs_hba *hba;
 
6409         unsigned long flags;
 
6414         hba = container_of(work, struct ufs_hba, eh_work);
 
6417                  "%s started; HBA state %s; powered %d; shutting down %d; saved_err = %d; saved_uic_err = %d; force_reset = %d%s\n",
 
6418                  __func__, ufshcd_state_name[hba->ufshcd_state],
 
6419                  hba->is_powered, hba->shutting_down, hba->saved_err,
 
6420                  hba->saved_uic_err, hba->force_reset,
 
6421                  ufshcd_is_link_broken(hba) ? "; link is broken" : "");
 
6423         down(&hba->host_sem);
 
6424         spin_lock_irqsave(hba->host->host_lock, flags);
 
6425         if (ufshcd_err_handling_should_stop(hba)) {
 
6426                 if (hba->ufshcd_state != UFSHCD_STATE_ERROR)
 
6427                         hba->ufshcd_state = UFSHCD_STATE_OPERATIONAL;
 
6428                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6432         ufshcd_set_eh_in_progress(hba);
 
6433         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6434         ufshcd_err_handling_prepare(hba);
 
6435         /* Complete requests that have door-bell cleared by h/w */
 
6436         ufshcd_complete_requests(hba);
 
6437         spin_lock_irqsave(hba->host->host_lock, flags);
 
6439         needs_restore = false;
 
6440         needs_reset = false;
 
6442         if (hba->ufshcd_state != UFSHCD_STATE_ERROR)
 
6443                 hba->ufshcd_state = UFSHCD_STATE_RESET;
 
6445          * A full reset and restore might have happened after preparation
 
6446          * is finished, double check whether we should stop.
 
6448         if (ufshcd_err_handling_should_stop(hba))
 
6449                 goto skip_err_handling;
 
6451         if (hba->dev_quirks & UFS_DEVICE_QUIRK_RECOVERY_FROM_DL_NAC_ERRORS) {
 
6454                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6455                 /* release the lock as ufshcd_quirk_dl_nac_errors() may sleep */
 
6456                 ret = ufshcd_quirk_dl_nac_errors(hba);
 
6457                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6458                 if (!ret && ufshcd_err_handling_should_stop(hba))
 
6459                         goto skip_err_handling;
 
6462         if ((hba->saved_err & (INT_FATAL_ERRORS | UFSHCD_UIC_HIBERN8_MASK)) ||
 
6463             (hba->saved_uic_err &&
 
6464              (hba->saved_uic_err != UFSHCD_UIC_PA_GENERIC_ERROR))) {
 
6465                 bool pr_prdt = !!(hba->saved_err & SYSTEM_BUS_FATAL_ERROR);
 
6467                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6468                 ufshcd_print_host_state(hba);
 
6469                 ufshcd_print_pwr_info(hba);
 
6470                 ufshcd_print_evt_hist(hba);
 
6471                 ufshcd_print_tmrs(hba, hba->outstanding_tasks);
 
6472                 ufshcd_print_trs_all(hba, pr_prdt);
 
6473                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6477          * if host reset is required then skip clearing the pending
 
6478          * transfers forcefully because they will get cleared during
 
6479          * host reset and restore
 
6481         if (hba->force_reset || ufshcd_is_link_broken(hba) ||
 
6482             ufshcd_is_saved_err_fatal(hba) ||
 
6483             ((hba->saved_err & UIC_ERROR) &&
 
6484              (hba->saved_uic_err & (UFSHCD_UIC_DL_NAC_RECEIVED_ERROR |
 
6485                                     UFSHCD_UIC_DL_TCx_REPLAY_ERROR)))) {
 
6491          * If LINERESET was caught, UFS might have been put to PWM mode,
 
6492          * check if power mode restore is needed.
 
6494         if (hba->saved_uic_err & UFSHCD_UIC_PA_GENERIC_ERROR) {
 
6495                 hba->saved_uic_err &= ~UFSHCD_UIC_PA_GENERIC_ERROR;
 
6496                 if (!hba->saved_uic_err)
 
6497                         hba->saved_err &= ~UIC_ERROR;
 
6498                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6499                 if (ufshcd_is_pwr_mode_restore_needed(hba))
 
6500                         needs_restore = true;
 
6501                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6502                 if (!hba->saved_err && !needs_restore)
 
6503                         goto skip_err_handling;
 
6506         hba->silence_err_logs = true;
 
6507         /* release lock as clear command might sleep */
 
6508         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6510         needs_reset = ufshcd_abort_all(hba);
 
6512         spin_lock_irqsave(hba->host->host_lock, flags);
 
6513         hba->silence_err_logs = false;
 
6518          * After all reqs and tasks are cleared from doorbell,
 
6519          * now it is safe to retore power mode.
 
6521         if (needs_restore) {
 
6522                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6524                  * Hold the scaling lock just in case dev cmds
 
6525                  * are sent via bsg and/or sysfs.
 
6527                 down_write(&hba->clk_scaling_lock);
 
6528                 hba->force_pmc = true;
 
6529                 pmc_err = ufshcd_config_pwr_mode(hba, &(hba->pwr_info));
 
6532                         dev_err(hba->dev, "%s: Failed to restore power mode, err = %d\n",
 
6535                 hba->force_pmc = false;
 
6536                 ufshcd_print_pwr_info(hba);
 
6537                 up_write(&hba->clk_scaling_lock);
 
6538                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6542         /* Fatal errors need reset */
 
6546                 hba->force_reset = false;
 
6547                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6548                 err = ufshcd_reset_and_restore(hba);
 
6550                         dev_err(hba->dev, "%s: reset and restore failed with err %d\n",
 
6553                         ufshcd_recover_pm_error(hba);
 
6554                 spin_lock_irqsave(hba->host->host_lock, flags);
 
6559                 if (hba->ufshcd_state == UFSHCD_STATE_RESET)
 
6560                         hba->ufshcd_state = UFSHCD_STATE_OPERATIONAL;
 
6561                 if (hba->saved_err || hba->saved_uic_err)
 
6562                         dev_err_ratelimited(hba->dev, "%s: exit: saved_err 0x%x saved_uic_err 0x%x",
 
6563                             __func__, hba->saved_err, hba->saved_uic_err);
 
6565         /* Exit in an operational state or dead */
 
6566         if (hba->ufshcd_state != UFSHCD_STATE_OPERATIONAL &&
 
6567             hba->ufshcd_state != UFSHCD_STATE_ERROR) {
 
6570                 hba->ufshcd_state = UFSHCD_STATE_ERROR;
 
6572         ufshcd_clear_eh_in_progress(hba);
 
6573         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6574         ufshcd_err_handling_unprepare(hba);
 
6577         dev_info(hba->dev, "%s finished; HBA state %s\n", __func__,
 
6578                  ufshcd_state_name[hba->ufshcd_state]);
 
6582  * ufshcd_update_uic_error - check and set fatal UIC error flags.
 
6583  * @hba: per-adapter instance
 
6586  *  IRQ_HANDLED - If interrupt is valid
 
6587  *  IRQ_NONE    - If invalid interrupt
 
6589 static irqreturn_t ufshcd_update_uic_error(struct ufs_hba *hba)
 
6592         irqreturn_t retval = IRQ_NONE;
 
6594         /* PHY layer error */
 
6595         reg = ufshcd_readl(hba, REG_UIC_ERROR_CODE_PHY_ADAPTER_LAYER);
 
6596         if ((reg & UIC_PHY_ADAPTER_LAYER_ERROR) &&
 
6597             (reg & UIC_PHY_ADAPTER_LAYER_ERROR_CODE_MASK)) {
 
6598                 ufshcd_update_evt_hist(hba, UFS_EVT_PA_ERR, reg);
 
6600                  * To know whether this error is fatal or not, DB timeout
 
6601                  * must be checked but this error is handled separately.
 
6603                 if (reg & UIC_PHY_ADAPTER_LAYER_LANE_ERR_MASK)
 
6604                         dev_dbg(hba->dev, "%s: UIC Lane error reported\n",
 
6607                 /* Got a LINERESET indication. */
 
6608                 if (reg & UIC_PHY_ADAPTER_LAYER_GENERIC_ERROR) {
 
6609                         struct uic_command *cmd = NULL;
 
6611                         hba->uic_error |= UFSHCD_UIC_PA_GENERIC_ERROR;
 
6612                         if (hba->uic_async_done && hba->active_uic_cmd)
 
6613                                 cmd = hba->active_uic_cmd;
 
6615                          * Ignore the LINERESET during power mode change
 
6616                          * operation via DME_SET command.
 
6618                         if (cmd && (cmd->command == UIC_CMD_DME_SET))
 
6619                                 hba->uic_error &= ~UFSHCD_UIC_PA_GENERIC_ERROR;
 
6621                 retval |= IRQ_HANDLED;
 
6624         /* PA_INIT_ERROR is fatal and needs UIC reset */
 
6625         reg = ufshcd_readl(hba, REG_UIC_ERROR_CODE_DATA_LINK_LAYER);
 
6626         if ((reg & UIC_DATA_LINK_LAYER_ERROR) &&
 
6627             (reg & UIC_DATA_LINK_LAYER_ERROR_CODE_MASK)) {
 
6628                 ufshcd_update_evt_hist(hba, UFS_EVT_DL_ERR, reg);
 
6630                 if (reg & UIC_DATA_LINK_LAYER_ERROR_PA_INIT)
 
6631                         hba->uic_error |= UFSHCD_UIC_DL_PA_INIT_ERROR;
 
6632                 else if (hba->dev_quirks &
 
6633                                 UFS_DEVICE_QUIRK_RECOVERY_FROM_DL_NAC_ERRORS) {
 
6634                         if (reg & UIC_DATA_LINK_LAYER_ERROR_NAC_RECEIVED)
 
6636                                         UFSHCD_UIC_DL_NAC_RECEIVED_ERROR;
 
6637                         else if (reg & UIC_DATA_LINK_LAYER_ERROR_TCx_REPLAY_TIMEOUT)
 
6638                                 hba->uic_error |= UFSHCD_UIC_DL_TCx_REPLAY_ERROR;
 
6640                 retval |= IRQ_HANDLED;
 
6643         /* UIC NL/TL/DME errors needs software retry */
 
6644         reg = ufshcd_readl(hba, REG_UIC_ERROR_CODE_NETWORK_LAYER);
 
6645         if ((reg & UIC_NETWORK_LAYER_ERROR) &&
 
6646             (reg & UIC_NETWORK_LAYER_ERROR_CODE_MASK)) {
 
6647                 ufshcd_update_evt_hist(hba, UFS_EVT_NL_ERR, reg);
 
6648                 hba->uic_error |= UFSHCD_UIC_NL_ERROR;
 
6649                 retval |= IRQ_HANDLED;
 
6652         reg = ufshcd_readl(hba, REG_UIC_ERROR_CODE_TRANSPORT_LAYER);
 
6653         if ((reg & UIC_TRANSPORT_LAYER_ERROR) &&
 
6654             (reg & UIC_TRANSPORT_LAYER_ERROR_CODE_MASK)) {
 
6655                 ufshcd_update_evt_hist(hba, UFS_EVT_TL_ERR, reg);
 
6656                 hba->uic_error |= UFSHCD_UIC_TL_ERROR;
 
6657                 retval |= IRQ_HANDLED;
 
6660         reg = ufshcd_readl(hba, REG_UIC_ERROR_CODE_DME);
 
6661         if ((reg & UIC_DME_ERROR) &&
 
6662             (reg & UIC_DME_ERROR_CODE_MASK)) {
 
6663                 ufshcd_update_evt_hist(hba, UFS_EVT_DME_ERR, reg);
 
6664                 hba->uic_error |= UFSHCD_UIC_DME_ERROR;
 
6665                 retval |= IRQ_HANDLED;
 
6668         dev_dbg(hba->dev, "%s: UIC error flags = 0x%08x\n",
 
6669                         __func__, hba->uic_error);
 
6674  * ufshcd_check_errors - Check for errors that need s/w attention
 
6675  * @hba: per-adapter instance
 
6676  * @intr_status: interrupt status generated by the controller
 
6679  *  IRQ_HANDLED - If interrupt is valid
 
6680  *  IRQ_NONE    - If invalid interrupt
 
6682 static irqreturn_t ufshcd_check_errors(struct ufs_hba *hba, u32 intr_status)
 
6684         bool queue_eh_work = false;
 
6685         irqreturn_t retval = IRQ_NONE;
 
6687         spin_lock(hba->host->host_lock);
 
6688         hba->errors |= UFSHCD_ERROR_MASK & intr_status;
 
6690         if (hba->errors & INT_FATAL_ERRORS) {
 
6691                 ufshcd_update_evt_hist(hba, UFS_EVT_FATAL_ERR,
 
6693                 queue_eh_work = true;
 
6696         if (hba->errors & UIC_ERROR) {
 
6698                 retval = ufshcd_update_uic_error(hba);
 
6700                         queue_eh_work = true;
 
6703         if (hba->errors & UFSHCD_UIC_HIBERN8_MASK) {
 
6705                         "%s: Auto Hibern8 %s failed - status: 0x%08x, upmcrs: 0x%08x\n",
 
6706                         __func__, (hba->errors & UIC_HIBERNATE_ENTER) ?
 
6708                         hba->errors, ufshcd_get_upmcrs(hba));
 
6709                 ufshcd_update_evt_hist(hba, UFS_EVT_AUTO_HIBERN8_ERR,
 
6711                 ufshcd_set_link_broken(hba);
 
6712                 queue_eh_work = true;
 
6715         if (queue_eh_work) {
 
6717                  * update the transfer error masks to sticky bits, let's do this
 
6718                  * irrespective of current ufshcd_state.
 
6720                 hba->saved_err |= hba->errors;
 
6721                 hba->saved_uic_err |= hba->uic_error;
 
6723                 /* dump controller state before resetting */
 
6724                 if ((hba->saved_err &
 
6725                      (INT_FATAL_ERRORS | UFSHCD_UIC_HIBERN8_MASK)) ||
 
6726                     (hba->saved_uic_err &&
 
6727                      (hba->saved_uic_err != UFSHCD_UIC_PA_GENERIC_ERROR))) {
 
6728                         dev_err(hba->dev, "%s: saved_err 0x%x saved_uic_err 0x%x\n",
 
6729                                         __func__, hba->saved_err,
 
6730                                         hba->saved_uic_err);
 
6731                         ufshcd_dump_regs(hba, 0, UFSHCI_REG_SPACE_SIZE,
 
6733                         ufshcd_print_pwr_info(hba);
 
6735                 ufshcd_schedule_eh_work(hba);
 
6736                 retval |= IRQ_HANDLED;
 
6739          * if (!queue_eh_work) -
 
6740          * Other errors are either non-fatal where host recovers
 
6741          * itself without s/w intervention or errors that will be
 
6742          * handled by the SCSI core layer.
 
6746         spin_unlock(hba->host->host_lock);
 
6751  * ufshcd_tmc_handler - handle task management function completion
 
6752  * @hba: per adapter instance
 
6755  *  IRQ_HANDLED - If interrupt is valid
 
6756  *  IRQ_NONE    - If invalid interrupt
 
6758 static irqreturn_t ufshcd_tmc_handler(struct ufs_hba *hba)
 
6760         unsigned long flags, pending, issued;
 
6761         irqreturn_t ret = IRQ_NONE;
 
6764         spin_lock_irqsave(hba->host->host_lock, flags);
 
6765         pending = ufshcd_readl(hba, REG_UTP_TASK_REQ_DOOR_BELL);
 
6766         issued = hba->outstanding_tasks & ~pending;
 
6767         for_each_set_bit(tag, &issued, hba->nutmrs) {
 
6768                 struct request *req = hba->tmf_rqs[tag];
 
6769                 struct completion *c = req->end_io_data;
 
6774         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6780  * ufshcd_handle_mcq_cq_events - handle MCQ completion queue events
 
6781  * @hba: per adapter instance
 
6783  * Returns IRQ_HANDLED if interrupt is handled
 
6785 static irqreturn_t ufshcd_handle_mcq_cq_events(struct ufs_hba *hba)
 
6787         struct ufs_hw_queue *hwq;
 
6788         unsigned long outstanding_cqs;
 
6789         unsigned int nr_queues;
 
6793         ret = ufshcd_vops_get_outstanding_cqs(hba, &outstanding_cqs);
 
6795                 outstanding_cqs = (1U << hba->nr_hw_queues) - 1;
 
6797         /* Exclude the poll queues */
 
6798         nr_queues = hba->nr_hw_queues - hba->nr_queues[HCTX_TYPE_POLL];
 
6799         for_each_set_bit(i, &outstanding_cqs, nr_queues) {
 
6802                 events = ufshcd_mcq_read_cqis(hba, i);
 
6804                         ufshcd_mcq_write_cqis(hba, events, i);
 
6806                 if (events & UFSHCD_MCQ_CQIS_TAIL_ENT_PUSH_STS)
 
6807                         ufshcd_mcq_poll_cqe_nolock(hba, hwq);
 
6814  * ufshcd_sl_intr - Interrupt service routine
 
6815  * @hba: per adapter instance
 
6816  * @intr_status: contains interrupts generated by the controller
 
6819  *  IRQ_HANDLED - If interrupt is valid
 
6820  *  IRQ_NONE    - If invalid interrupt
 
6822 static irqreturn_t ufshcd_sl_intr(struct ufs_hba *hba, u32 intr_status)
 
6824         irqreturn_t retval = IRQ_NONE;
 
6826         if (intr_status & UFSHCD_UIC_MASK)
 
6827                 retval |= ufshcd_uic_cmd_compl(hba, intr_status);
 
6829         if (intr_status & UFSHCD_ERROR_MASK || hba->errors)
 
6830                 retval |= ufshcd_check_errors(hba, intr_status);
 
6832         if (intr_status & UTP_TASK_REQ_COMPL)
 
6833                 retval |= ufshcd_tmc_handler(hba);
 
6835         if (intr_status & UTP_TRANSFER_REQ_COMPL)
 
6836                 retval |= ufshcd_transfer_req_compl(hba);
 
6838         if (intr_status & MCQ_CQ_EVENT_STATUS)
 
6839                 retval |= ufshcd_handle_mcq_cq_events(hba);
 
6845  * ufshcd_intr - Main interrupt service routine
 
6847  * @__hba: pointer to adapter instance
 
6850  *  IRQ_HANDLED - If interrupt is valid
 
6851  *  IRQ_NONE    - If invalid interrupt
 
6853 static irqreturn_t ufshcd_intr(int irq, void *__hba)
 
6855         u32 intr_status, enabled_intr_status = 0;
 
6856         irqreturn_t retval = IRQ_NONE;
 
6857         struct ufs_hba *hba = __hba;
 
6858         int retries = hba->nutrs;
 
6860         intr_status = ufshcd_readl(hba, REG_INTERRUPT_STATUS);
 
6861         hba->ufs_stats.last_intr_status = intr_status;
 
6862         hba->ufs_stats.last_intr_ts = local_clock();
 
6865          * There could be max of hba->nutrs reqs in flight and in worst case
 
6866          * if the reqs get finished 1 by 1 after the interrupt status is
 
6867          * read, make sure we handle them by checking the interrupt status
 
6868          * again in a loop until we process all of the reqs before returning.
 
6870         while (intr_status && retries--) {
 
6871                 enabled_intr_status =
 
6872                         intr_status & ufshcd_readl(hba, REG_INTERRUPT_ENABLE);
 
6873                 ufshcd_writel(hba, intr_status, REG_INTERRUPT_STATUS);
 
6874                 if (enabled_intr_status)
 
6875                         retval |= ufshcd_sl_intr(hba, enabled_intr_status);
 
6877                 intr_status = ufshcd_readl(hba, REG_INTERRUPT_STATUS);
 
6880         if (enabled_intr_status && retval == IRQ_NONE &&
 
6881             (!(enabled_intr_status & UTP_TRANSFER_REQ_COMPL) ||
 
6882              hba->outstanding_reqs) && !ufshcd_eh_in_progress(hba)) {
 
6883                 dev_err(hba->dev, "%s: Unhandled interrupt 0x%08x (0x%08x, 0x%08x)\n",
 
6886                                         hba->ufs_stats.last_intr_status,
 
6887                                         enabled_intr_status);
 
6888                 ufshcd_dump_regs(hba, 0, UFSHCI_REG_SPACE_SIZE, "host_regs: ");
 
6894 static int ufshcd_clear_tm_cmd(struct ufs_hba *hba, int tag)
 
6897         u32 mask = 1 << tag;
 
6898         unsigned long flags;
 
6900         if (!test_bit(tag, &hba->outstanding_tasks))
 
6903         spin_lock_irqsave(hba->host->host_lock, flags);
 
6904         ufshcd_utmrl_clear(hba, tag);
 
6905         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6907         /* poll for max. 1 sec to clear door bell register by h/w */
 
6908         err = ufshcd_wait_for_register(hba,
 
6909                         REG_UTP_TASK_REQ_DOOR_BELL,
 
6910                         mask, 0, 1000, 1000);
 
6912         dev_err(hba->dev, "Clearing task management function with tag %d %s\n",
 
6913                 tag, err ? "succeeded" : "failed");
 
6919 static int __ufshcd_issue_tm_cmd(struct ufs_hba *hba,
 
6920                 struct utp_task_req_desc *treq, u8 tm_function)
 
6922         struct request_queue *q = hba->tmf_queue;
 
6923         struct Scsi_Host *host = hba->host;
 
6924         DECLARE_COMPLETION_ONSTACK(wait);
 
6925         struct request *req;
 
6926         unsigned long flags;
 
6930          * blk_mq_alloc_request() is used here only to get a free tag.
 
6932         req = blk_mq_alloc_request(q, REQ_OP_DRV_OUT, 0);
 
6934                 return PTR_ERR(req);
 
6936         req->end_io_data = &wait;
 
6937         ufshcd_hold(hba, false);
 
6939         spin_lock_irqsave(host->host_lock, flags);
 
6941         task_tag = req->tag;
 
6942         WARN_ONCE(task_tag < 0 || task_tag >= hba->nutmrs, "Invalid tag %d\n",
 
6944         hba->tmf_rqs[req->tag] = req;
 
6945         treq->upiu_req.req_header.dword_0 |= cpu_to_be32(task_tag);
 
6947         memcpy(hba->utmrdl_base_addr + task_tag, treq, sizeof(*treq));
 
6948         ufshcd_vops_setup_task_mgmt(hba, task_tag, tm_function);
 
6950         /* send command to the controller */
 
6951         __set_bit(task_tag, &hba->outstanding_tasks);
 
6953         ufshcd_writel(hba, 1 << task_tag, REG_UTP_TASK_REQ_DOOR_BELL);
 
6954         /* Make sure that doorbell is committed immediately */
 
6957         spin_unlock_irqrestore(host->host_lock, flags);
 
6959         ufshcd_add_tm_upiu_trace(hba, task_tag, UFS_TM_SEND);
 
6961         /* wait until the task management command is completed */
 
6962         err = wait_for_completion_io_timeout(&wait,
 
6963                         msecs_to_jiffies(TM_CMD_TIMEOUT));
 
6965                 ufshcd_add_tm_upiu_trace(hba, task_tag, UFS_TM_ERR);
 
6966                 dev_err(hba->dev, "%s: task management cmd 0x%.2x timed-out\n",
 
6967                                 __func__, tm_function);
 
6968                 if (ufshcd_clear_tm_cmd(hba, task_tag))
 
6969                         dev_WARN(hba->dev, "%s: unable to clear tm cmd (slot %d) after timeout\n",
 
6970                                         __func__, task_tag);
 
6974                 memcpy(treq, hba->utmrdl_base_addr + task_tag, sizeof(*treq));
 
6976                 ufshcd_add_tm_upiu_trace(hba, task_tag, UFS_TM_COMP);
 
6979         spin_lock_irqsave(hba->host->host_lock, flags);
 
6980         hba->tmf_rqs[req->tag] = NULL;
 
6981         __clear_bit(task_tag, &hba->outstanding_tasks);
 
6982         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
6984         ufshcd_release(hba);
 
6985         blk_mq_free_request(req);
 
6991  * ufshcd_issue_tm_cmd - issues task management commands to controller
 
6992  * @hba: per adapter instance
 
6993  * @lun_id: LUN ID to which TM command is sent
 
6994  * @task_id: task ID to which the TM command is applicable
 
6995  * @tm_function: task management function opcode
 
6996  * @tm_response: task management service response return value
 
6998  * Returns non-zero value on error, zero on success.
 
7000 static int ufshcd_issue_tm_cmd(struct ufs_hba *hba, int lun_id, int task_id,
 
7001                 u8 tm_function, u8 *tm_response)
 
7003         struct utp_task_req_desc treq = { { 0 }, };
 
7004         enum utp_ocs ocs_value;
 
7007         /* Configure task request descriptor */
 
7008         treq.header.dword_0 = cpu_to_le32(UTP_REQ_DESC_INT_CMD);
 
7009         treq.header.dword_2 = cpu_to_le32(OCS_INVALID_COMMAND_STATUS);
 
7011         /* Configure task request UPIU */
 
7012         treq.upiu_req.req_header.dword_0 = cpu_to_be32(lun_id << 8) |
 
7013                                   cpu_to_be32(UPIU_TRANSACTION_TASK_REQ << 24);
 
7014         treq.upiu_req.req_header.dword_1 = cpu_to_be32(tm_function << 16);
 
7017          * The host shall provide the same value for LUN field in the basic
 
7018          * header and for Input Parameter.
 
7020         treq.upiu_req.input_param1 = cpu_to_be32(lun_id);
 
7021         treq.upiu_req.input_param2 = cpu_to_be32(task_id);
 
7023         err = __ufshcd_issue_tm_cmd(hba, &treq, tm_function);
 
7024         if (err == -ETIMEDOUT)
 
7027         ocs_value = le32_to_cpu(treq.header.dword_2) & MASK_OCS;
 
7028         if (ocs_value != OCS_SUCCESS)
 
7029                 dev_err(hba->dev, "%s: failed, ocs = 0x%x\n",
 
7030                                 __func__, ocs_value);
 
7031         else if (tm_response)
 
7032                 *tm_response = be32_to_cpu(treq.upiu_rsp.output_param1) &
 
7033                                 MASK_TM_SERVICE_RESP;
 
7038  * ufshcd_issue_devman_upiu_cmd - API for sending "utrd" type requests
 
7039  * @hba:        per-adapter instance
 
7040  * @req_upiu:   upiu request
 
7041  * @rsp_upiu:   upiu reply
 
7042  * @desc_buff:  pointer to descriptor buffer, NULL if NA
 
7043  * @buff_len:   descriptor size, 0 if NA
 
7044  * @cmd_type:   specifies the type (NOP, Query...)
 
7045  * @desc_op:    descriptor operation
 
7047  * Those type of requests uses UTP Transfer Request Descriptor - utrd.
 
7048  * Therefore, it "rides" the device management infrastructure: uses its tag and
 
7049  * tasks work queues.
 
7051  * Since there is only one available tag for device management commands,
 
7052  * the caller is expected to hold the hba->dev_cmd.lock mutex.
 
7054 static int ufshcd_issue_devman_upiu_cmd(struct ufs_hba *hba,
 
7055                                         struct utp_upiu_req *req_upiu,
 
7056                                         struct utp_upiu_req *rsp_upiu,
 
7057                                         u8 *desc_buff, int *buff_len,
 
7058                                         enum dev_cmd_type cmd_type,
 
7059                                         enum query_opcode desc_op)
 
7061         DECLARE_COMPLETION_ONSTACK(wait);
 
7062         const u32 tag = hba->reserved_slot;
 
7063         struct ufshcd_lrb *lrbp;
 
7067         /* Protects use of hba->reserved_slot. */
 
7068         lockdep_assert_held(&hba->dev_cmd.lock);
 
7070         down_read(&hba->clk_scaling_lock);
 
7072         lrbp = &hba->lrb[tag];
 
7075         lrbp->task_tag = tag;
 
7077         lrbp->intr_cmd = true;
 
7078         ufshcd_prepare_lrbp_crypto(NULL, lrbp);
 
7079         hba->dev_cmd.type = cmd_type;
 
7081         if (hba->ufs_version <= ufshci_version(1, 1))
 
7082                 lrbp->command_type = UTP_CMD_TYPE_DEV_MANAGE;
 
7084                 lrbp->command_type = UTP_CMD_TYPE_UFS_STORAGE;
 
7086         /* update the task tag in the request upiu */
 
7087         req_upiu->header.dword_0 |= cpu_to_be32(tag);
 
7089         ufshcd_prepare_req_desc_hdr(lrbp, &upiu_flags, DMA_NONE, 0);
 
7091         /* just copy the upiu request as it is */
 
7092         memcpy(lrbp->ucd_req_ptr, req_upiu, sizeof(*lrbp->ucd_req_ptr));
 
7093         if (desc_buff && desc_op == UPIU_QUERY_OPCODE_WRITE_DESC) {
 
7094                 /* The Data Segment Area is optional depending upon the query
 
7095                  * function value. for WRITE DESCRIPTOR, the data segment
 
7096                  * follows right after the tsf.
 
7098                 memcpy(lrbp->ucd_req_ptr + 1, desc_buff, *buff_len);
 
7102         memset(lrbp->ucd_rsp_ptr, 0, sizeof(struct utp_upiu_rsp));
 
7104         hba->dev_cmd.complete = &wait;
 
7106         ufshcd_add_query_upiu_trace(hba, UFS_QUERY_SEND, lrbp->ucd_req_ptr);
 
7108         ufshcd_send_command(hba, tag, hba->dev_cmd_queue);
 
7110          * ignore the returning value here - ufshcd_check_query_response is
 
7111          * bound to fail since dev_cmd.query and dev_cmd.type were left empty.
 
7112          * read the response directly ignoring all errors.
 
7114         ufshcd_wait_for_dev_cmd(hba, lrbp, QUERY_REQ_TIMEOUT);
 
7116         /* just copy the upiu response as it is */
 
7117         memcpy(rsp_upiu, lrbp->ucd_rsp_ptr, sizeof(*rsp_upiu));
 
7118         if (desc_buff && desc_op == UPIU_QUERY_OPCODE_READ_DESC) {
 
7119                 u8 *descp = (u8 *)lrbp->ucd_rsp_ptr + sizeof(*rsp_upiu);
 
7120                 u16 resp_len = be32_to_cpu(lrbp->ucd_rsp_ptr->header.dword_2) &
 
7121                                MASK_QUERY_DATA_SEG_LEN;
 
7123                 if (*buff_len >= resp_len) {
 
7124                         memcpy(desc_buff, descp, resp_len);
 
7125                         *buff_len = resp_len;
 
7128                                  "%s: rsp size %d is bigger than buffer size %d",
 
7129                                  __func__, resp_len, *buff_len);
 
7134         ufshcd_add_query_upiu_trace(hba, err ? UFS_QUERY_ERR : UFS_QUERY_COMP,
 
7135                                     (struct utp_upiu_req *)lrbp->ucd_rsp_ptr);
 
7137         up_read(&hba->clk_scaling_lock);
 
7142  * ufshcd_exec_raw_upiu_cmd - API function for sending raw upiu commands
 
7143  * @hba:        per-adapter instance
 
7144  * @req_upiu:   upiu request
 
7145  * @rsp_upiu:   upiu reply - only 8 DW as we do not support scsi commands
 
7146  * @msgcode:    message code, one of UPIU Transaction Codes Initiator to Target
 
7147  * @desc_buff:  pointer to descriptor buffer, NULL if NA
 
7148  * @buff_len:   descriptor size, 0 if NA
 
7149  * @desc_op:    descriptor operation
 
7151  * Supports UTP Transfer requests (nop and query), and UTP Task
 
7152  * Management requests.
 
7153  * It is up to the caller to fill the upiu conent properly, as it will
 
7154  * be copied without any further input validations.
 
7156 int ufshcd_exec_raw_upiu_cmd(struct ufs_hba *hba,
 
7157                              struct utp_upiu_req *req_upiu,
 
7158                              struct utp_upiu_req *rsp_upiu,
 
7160                              u8 *desc_buff, int *buff_len,
 
7161                              enum query_opcode desc_op)
 
7164         enum dev_cmd_type cmd_type = DEV_CMD_TYPE_QUERY;
 
7165         struct utp_task_req_desc treq = { { 0 }, };
 
7166         enum utp_ocs ocs_value;
 
7167         u8 tm_f = be32_to_cpu(req_upiu->header.dword_1) >> 16 & MASK_TM_FUNC;
 
7170         case UPIU_TRANSACTION_NOP_OUT:
 
7171                 cmd_type = DEV_CMD_TYPE_NOP;
 
7173         case UPIU_TRANSACTION_QUERY_REQ:
 
7174                 ufshcd_hold(hba, false);
 
7175                 mutex_lock(&hba->dev_cmd.lock);
 
7176                 err = ufshcd_issue_devman_upiu_cmd(hba, req_upiu, rsp_upiu,
 
7177                                                    desc_buff, buff_len,
 
7179                 mutex_unlock(&hba->dev_cmd.lock);
 
7180                 ufshcd_release(hba);
 
7183         case UPIU_TRANSACTION_TASK_REQ:
 
7184                 treq.header.dword_0 = cpu_to_le32(UTP_REQ_DESC_INT_CMD);
 
7185                 treq.header.dword_2 = cpu_to_le32(OCS_INVALID_COMMAND_STATUS);
 
7187                 memcpy(&treq.upiu_req, req_upiu, sizeof(*req_upiu));
 
7189                 err = __ufshcd_issue_tm_cmd(hba, &treq, tm_f);
 
7190                 if (err == -ETIMEDOUT)
 
7193                 ocs_value = le32_to_cpu(treq.header.dword_2) & MASK_OCS;
 
7194                 if (ocs_value != OCS_SUCCESS) {
 
7195                         dev_err(hba->dev, "%s: failed, ocs = 0x%x\n", __func__,
 
7200                 memcpy(rsp_upiu, &treq.upiu_rsp, sizeof(*rsp_upiu));
 
7213  * ufshcd_advanced_rpmb_req_handler - handle advanced RPMB request
 
7214  * @hba:        per adapter instance
 
7215  * @req_upiu:   upiu request
 
7216  * @rsp_upiu:   upiu reply
 
7217  * @req_ehs:    EHS field which contains Advanced RPMB Request Message
 
7218  * @rsp_ehs:    EHS field which returns Advanced RPMB Response Message
 
7219  * @sg_cnt:     The number of sg lists actually used
 
7220  * @sg_list:    Pointer to SG list when DATA IN/OUT UPIU is required in ARPMB operation
 
7221  * @dir:        DMA direction
 
7223  * Returns zero on success, non-zero on failure
 
7225 int ufshcd_advanced_rpmb_req_handler(struct ufs_hba *hba, struct utp_upiu_req *req_upiu,
 
7226                          struct utp_upiu_req *rsp_upiu, struct ufs_ehs *req_ehs,
 
7227                          struct ufs_ehs *rsp_ehs, int sg_cnt, struct scatterlist *sg_list,
 
7228                          enum dma_data_direction dir)
 
7230         DECLARE_COMPLETION_ONSTACK(wait);
 
7231         const u32 tag = hba->reserved_slot;
 
7232         struct ufshcd_lrb *lrbp;
 
7239         /* Protects use of hba->reserved_slot. */
 
7240         ufshcd_hold(hba, false);
 
7241         mutex_lock(&hba->dev_cmd.lock);
 
7242         down_read(&hba->clk_scaling_lock);
 
7244         lrbp = &hba->lrb[tag];
 
7247         lrbp->task_tag = tag;
 
7248         lrbp->lun = UFS_UPIU_RPMB_WLUN;
 
7250         lrbp->intr_cmd = true;
 
7251         ufshcd_prepare_lrbp_crypto(NULL, lrbp);
 
7252         hba->dev_cmd.type = DEV_CMD_TYPE_RPMB;
 
7254         /* Advanced RPMB starts from UFS 4.0, so its command type is UTP_CMD_TYPE_UFS_STORAGE */
 
7255         lrbp->command_type = UTP_CMD_TYPE_UFS_STORAGE;
 
7257         ufshcd_prepare_req_desc_hdr(lrbp, &upiu_flags, dir, 2);
 
7259         /* update the task tag and LUN in the request upiu */
 
7260         req_upiu->header.dword_0 |= cpu_to_be32(upiu_flags << 16 | UFS_UPIU_RPMB_WLUN << 8 | tag);
 
7262         /* copy the UPIU(contains CDB) request as it is */
 
7263         memcpy(lrbp->ucd_req_ptr, req_upiu, sizeof(*lrbp->ucd_req_ptr));
 
7264         /* Copy EHS, starting with byte32, immediately after the CDB package */
 
7265         memcpy(lrbp->ucd_req_ptr + 1, req_ehs, sizeof(*req_ehs));
 
7267         if (dir != DMA_NONE && sg_list)
 
7268                 ufshcd_sgl_to_prdt(hba, lrbp, sg_cnt, sg_list);
 
7270         memset(lrbp->ucd_rsp_ptr, 0, sizeof(struct utp_upiu_rsp));
 
7272         hba->dev_cmd.complete = &wait;
 
7274         ufshcd_send_command(hba, tag, hba->dev_cmd_queue);
 
7276         err = ufshcd_wait_for_dev_cmd(hba, lrbp, ADVANCED_RPMB_REQ_TIMEOUT);
 
7279                 /* Just copy the upiu response as it is */
 
7280                 memcpy(rsp_upiu, lrbp->ucd_rsp_ptr, sizeof(*rsp_upiu));
 
7281                 /* Get the response UPIU result */
 
7282                 result = ufshcd_get_rsp_upiu_result(lrbp->ucd_rsp_ptr);
 
7284                 ehs_len = be32_to_cpu(lrbp->ucd_rsp_ptr->header.dword_2) >> 24;
 
7286                  * Since the bLength in EHS indicates the total size of the EHS Header and EHS Data
 
7287                  * in 32 Byte units, the value of the bLength Request/Response for Advanced RPMB
 
7290                 if (ehs_len == 2 && rsp_ehs) {
 
7292                          * ucd_rsp_ptr points to a buffer with a length of 512 bytes
 
7293                          * (ALIGNED_UPIU_SIZE = 512), and the EHS data just starts from byte32
 
7295                         ehs_data = (u8 *)lrbp->ucd_rsp_ptr + EHS_OFFSET_IN_RESPONSE;
 
7296                         memcpy(rsp_ehs, ehs_data, ehs_len * 32);
 
7300         up_read(&hba->clk_scaling_lock);
 
7301         mutex_unlock(&hba->dev_cmd.lock);
 
7302         ufshcd_release(hba);
 
7303         return err ? : result;
 
7307  * ufshcd_eh_device_reset_handler() - Reset a single logical unit.
 
7308  * @cmd: SCSI command pointer
 
7310  * Returns SUCCESS/FAILED
 
7312 static int ufshcd_eh_device_reset_handler(struct scsi_cmnd *cmd)
 
7314         unsigned long flags, pending_reqs = 0, not_cleared = 0;
 
7315         struct Scsi_Host *host;
 
7316         struct ufs_hba *hba;
 
7317         u32 pos, not_cleared_mask = 0;
 
7321         host = cmd->device->host;
 
7322         hba = shost_priv(host);
 
7324         lun = ufshcd_scsi_to_upiu_lun(cmd->device->lun);
 
7325         err = ufshcd_issue_tm_cmd(hba, lun, 0, UFS_LOGICAL_RESET, &resp);
 
7326         if (err || resp != UPIU_TASK_MANAGEMENT_FUNC_COMPL) {
 
7332         /* clear the commands that were pending for corresponding LUN */
 
7333         spin_lock_irqsave(&hba->outstanding_lock, flags);
 
7334         for_each_set_bit(pos, &hba->outstanding_reqs, hba->nutrs)
 
7335                 if (hba->lrb[pos].lun == lun)
 
7336                         __set_bit(pos, &pending_reqs);
 
7337         hba->outstanding_reqs &= ~pending_reqs;
 
7338         spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
7340         for_each_set_bit(pos, &pending_reqs, hba->nutrs) {
 
7341                 if (ufshcd_clear_cmd(hba, pos) < 0) {
 
7342                         spin_lock_irqsave(&hba->outstanding_lock, flags);
 
7343                         not_cleared = 1U << pos &
 
7344                                 ufshcd_readl(hba, REG_UTP_TRANSFER_REQ_DOOR_BELL);
 
7345                         hba->outstanding_reqs |= not_cleared;
 
7346                         not_cleared_mask |= not_cleared;
 
7347                         spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
7349                         dev_err(hba->dev, "%s: failed to clear request %d\n",
 
7353         __ufshcd_transfer_req_compl(hba, pending_reqs & ~not_cleared_mask);
 
7356         hba->req_abort_count = 0;
 
7357         ufshcd_update_evt_hist(hba, UFS_EVT_DEV_RESET, (u32)err);
 
7361                 dev_err(hba->dev, "%s: failed with err %d\n", __func__, err);
 
7367 static void ufshcd_set_req_abort_skip(struct ufs_hba *hba, unsigned long bitmap)
 
7369         struct ufshcd_lrb *lrbp;
 
7372         for_each_set_bit(tag, &bitmap, hba->nutrs) {
 
7373                 lrbp = &hba->lrb[tag];
 
7374                 lrbp->req_abort_skip = true;
 
7379  * ufshcd_try_to_abort_task - abort a specific task
 
7380  * @hba: Pointer to adapter instance
 
7381  * @tag: Task tag/index to be aborted
 
7383  * Abort the pending command in device by sending UFS_ABORT_TASK task management
 
7384  * command, and in host controller by clearing the door-bell register. There can
 
7385  * be race between controller sending the command to the device while abort is
 
7386  * issued. To avoid that, first issue UFS_QUERY_TASK to check if the command is
 
7387  * really issued and then try to abort it.
 
7389  * Returns zero on success, non-zero on failure
 
7391 int ufshcd_try_to_abort_task(struct ufs_hba *hba, int tag)
 
7393         struct ufshcd_lrb *lrbp = &hba->lrb[tag];
 
7399         for (poll_cnt = 100; poll_cnt; poll_cnt--) {
 
7400                 err = ufshcd_issue_tm_cmd(hba, lrbp->lun, lrbp->task_tag,
 
7401                                 UFS_QUERY_TASK, &resp);
 
7402                 if (!err && resp == UPIU_TASK_MANAGEMENT_FUNC_SUCCEEDED) {
 
7403                         /* cmd pending in the device */
 
7404                         dev_err(hba->dev, "%s: cmd pending in the device. tag = %d\n",
 
7407                 } else if (!err && resp == UPIU_TASK_MANAGEMENT_FUNC_COMPL) {
 
7409                          * cmd not pending in the device, check if it is
 
7412                         dev_err(hba->dev, "%s: cmd at tag %d not pending in the device.\n",
 
7414                         if (is_mcq_enabled(hba)) {
 
7416                                 if (ufshcd_cmd_inflight(lrbp->cmd)) {
 
7417                                         /* sleep for max. 200us same delay as in SDB mode */
 
7418                                         usleep_range(100, 200);
 
7421                                 /* command completed already */
 
7422                                 dev_err(hba->dev, "%s: cmd at tag=%d is cleared.\n",
 
7427                         /* Single Doorbell Mode */
 
7428                         reg = ufshcd_readl(hba, REG_UTP_TRANSFER_REQ_DOOR_BELL);
 
7429                         if (reg & (1 << tag)) {
 
7430                                 /* sleep for max. 200us to stabilize */
 
7431                                 usleep_range(100, 200);
 
7434                         /* command completed already */
 
7435                         dev_err(hba->dev, "%s: cmd at tag %d successfully cleared from DB.\n",
 
7440                                 "%s: no response from device. tag = %d, err %d\n",
 
7441                                 __func__, tag, err);
 
7443                                 err = resp; /* service response error */
 
7453         err = ufshcd_issue_tm_cmd(hba, lrbp->lun, lrbp->task_tag,
 
7454                         UFS_ABORT_TASK, &resp);
 
7455         if (err || resp != UPIU_TASK_MANAGEMENT_FUNC_COMPL) {
 
7457                         err = resp; /* service response error */
 
7458                         dev_err(hba->dev, "%s: issued. tag = %d, err %d\n",
 
7459                                 __func__, tag, err);
 
7464         err = ufshcd_clear_cmd(hba, tag);
 
7466                 dev_err(hba->dev, "%s: Failed clearing cmd at tag %d, err %d\n",
 
7467                         __func__, tag, err);
 
7474  * ufshcd_abort - scsi host template eh_abort_handler callback
 
7475  * @cmd: SCSI command pointer
 
7477  * Returns SUCCESS/FAILED
 
7479 static int ufshcd_abort(struct scsi_cmnd *cmd)
 
7481         struct Scsi_Host *host = cmd->device->host;
 
7482         struct ufs_hba *hba = shost_priv(host);
 
7483         int tag = scsi_cmd_to_rq(cmd)->tag;
 
7484         struct ufshcd_lrb *lrbp = &hba->lrb[tag];
 
7485         unsigned long flags;
 
7490         WARN_ONCE(tag < 0, "Invalid tag %d\n", tag);
 
7492         ufshcd_hold(hba, false);
 
7494         if (!is_mcq_enabled(hba)) {
 
7495                 reg = ufshcd_readl(hba, REG_UTP_TRANSFER_REQ_DOOR_BELL);
 
7496                 if (!test_bit(tag, &hba->outstanding_reqs)) {
 
7497                         /* If command is already aborted/completed, return FAILED. */
 
7499                                 "%s: cmd at tag %d already completed, outstanding=0x%lx, doorbell=0x%x\n",
 
7500                                 __func__, tag, hba->outstanding_reqs, reg);
 
7505         /* Print Transfer Request of aborted task */
 
7506         dev_info(hba->dev, "%s: Device abort task at tag %d\n", __func__, tag);
 
7509          * Print detailed info about aborted request.
 
7510          * As more than one request might get aborted at the same time,
 
7511          * print full information only for the first aborted request in order
 
7512          * to reduce repeated printouts. For other aborted requests only print
 
7515         scsi_print_command(cmd);
 
7516         if (!hba->req_abort_count) {
 
7517                 ufshcd_update_evt_hist(hba, UFS_EVT_ABORT, tag);
 
7518                 ufshcd_print_evt_hist(hba);
 
7519                 ufshcd_print_host_state(hba);
 
7520                 ufshcd_print_pwr_info(hba);
 
7521                 ufshcd_print_tr(hba, tag, true);
 
7523                 ufshcd_print_tr(hba, tag, false);
 
7525         hba->req_abort_count++;
 
7527         if (!is_mcq_enabled(hba) && !(reg & (1 << tag))) {
 
7528                 /* only execute this code in single doorbell mode */
 
7530                 "%s: cmd was completed, but without a notifying intr, tag = %d",
 
7532                 __ufshcd_transfer_req_compl(hba, 1UL << tag);
 
7537          * Task abort to the device W-LUN is illegal. When this command
 
7538          * will fail, due to spec violation, scsi err handling next step
 
7539          * will be to send LU reset which, again, is a spec violation.
 
7540          * To avoid these unnecessary/illegal steps, first we clean up
 
7541          * the lrb taken by this cmd and re-set it in outstanding_reqs,
 
7542          * then queue the eh_work and bail.
 
7544         if (lrbp->lun == UFS_UPIU_UFS_DEVICE_WLUN) {
 
7545                 ufshcd_update_evt_hist(hba, UFS_EVT_ABORT, lrbp->lun);
 
7547                 spin_lock_irqsave(host->host_lock, flags);
 
7548                 hba->force_reset = true;
 
7549                 ufshcd_schedule_eh_work(hba);
 
7550                 spin_unlock_irqrestore(host->host_lock, flags);
 
7554         if (is_mcq_enabled(hba)) {
 
7555                 /* MCQ mode. Branch off to handle abort for mcq mode */
 
7556                 err = ufshcd_mcq_abort(cmd);
 
7560         /* Skip task abort in case previous aborts failed and report failure */
 
7561         if (lrbp->req_abort_skip) {
 
7562                 dev_err(hba->dev, "%s: skipping abort\n", __func__);
 
7563                 ufshcd_set_req_abort_skip(hba, hba->outstanding_reqs);
 
7567         err = ufshcd_try_to_abort_task(hba, tag);
 
7569                 dev_err(hba->dev, "%s: failed with err %d\n", __func__, err);
 
7570                 ufshcd_set_req_abort_skip(hba, hba->outstanding_reqs);
 
7576          * Clear the corresponding bit from outstanding_reqs since the command
 
7577          * has been aborted successfully.
 
7579         spin_lock_irqsave(&hba->outstanding_lock, flags);
 
7580         outstanding = __test_and_clear_bit(tag, &hba->outstanding_reqs);
 
7581         spin_unlock_irqrestore(&hba->outstanding_lock, flags);
 
7584                 ufshcd_release_scsi_cmd(hba, lrbp);
 
7589         /* Matches the ufshcd_hold() call at the start of this function. */
 
7590         ufshcd_release(hba);
 
7595  * ufshcd_host_reset_and_restore - reset and restore host controller
 
7596  * @hba: per-adapter instance
 
7598  * Note that host controller reset may issue DME_RESET to
 
7599  * local and remote (device) Uni-Pro stack and the attributes
 
7600  * are reset to default state.
 
7602  * Returns zero on success, non-zero on failure
 
7604 static int ufshcd_host_reset_and_restore(struct ufs_hba *hba)
 
7609          * Stop the host controller and complete the requests
 
7612         ufshpb_toggle_state(hba, HPB_PRESENT, HPB_RESET);
 
7613         ufshcd_hba_stop(hba);
 
7614         hba->silence_err_logs = true;
 
7615         ufshcd_complete_requests(hba);
 
7616         hba->silence_err_logs = false;
 
7618         /* scale up clocks to max frequency before full reinitialization */
 
7619         ufshcd_scale_clks(hba, true);
 
7621         err = ufshcd_hba_enable(hba);
 
7623         /* Establish the link again and restore the device */
 
7625                 err = ufshcd_probe_hba(hba, false);
 
7628                 dev_err(hba->dev, "%s: Host init failed %d\n", __func__, err);
 
7629         ufshcd_update_evt_hist(hba, UFS_EVT_HOST_RESET, (u32)err);
 
7634  * ufshcd_reset_and_restore - reset and re-initialize host/device
 
7635  * @hba: per-adapter instance
 
7637  * Reset and recover device, host and re-establish link. This
 
7638  * is helpful to recover the communication in fatal error conditions.
 
7640  * Returns zero on success, non-zero on failure
 
7642 static int ufshcd_reset_and_restore(struct ufs_hba *hba)
 
7645         u32 saved_uic_err = 0;
 
7647         unsigned long flags;
 
7648         int retries = MAX_HOST_RESET_RETRIES;
 
7650         spin_lock_irqsave(hba->host->host_lock, flags);
 
7653                  * This is a fresh start, cache and clear saved error first,
 
7654                  * in case new error generated during reset and restore.
 
7656                 saved_err |= hba->saved_err;
 
7657                 saved_uic_err |= hba->saved_uic_err;
 
7659                 hba->saved_uic_err = 0;
 
7660                 hba->force_reset = false;
 
7661                 hba->ufshcd_state = UFSHCD_STATE_RESET;
 
7662                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
7664                 /* Reset the attached device */
 
7665                 ufshcd_device_reset(hba);
 
7667                 err = ufshcd_host_reset_and_restore(hba);
 
7669                 spin_lock_irqsave(hba->host->host_lock, flags);
 
7672                 /* Do not exit unless operational or dead */
 
7673                 if (hba->ufshcd_state != UFSHCD_STATE_OPERATIONAL &&
 
7674                     hba->ufshcd_state != UFSHCD_STATE_ERROR &&
 
7675                     hba->ufshcd_state != UFSHCD_STATE_EH_SCHEDULED_NON_FATAL)
 
7677         } while (err && --retries);
 
7680          * Inform scsi mid-layer that we did reset and allow to handle
 
7681          * Unit Attention properly.
 
7683         scsi_report_bus_reset(hba->host, 0);
 
7685                 hba->ufshcd_state = UFSHCD_STATE_ERROR;
 
7686                 hba->saved_err |= saved_err;
 
7687                 hba->saved_uic_err |= saved_uic_err;
 
7689         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
7695  * ufshcd_eh_host_reset_handler - host reset handler registered to scsi layer
 
7696  * @cmd: SCSI command pointer
 
7698  * Returns SUCCESS/FAILED
 
7700 static int ufshcd_eh_host_reset_handler(struct scsi_cmnd *cmd)
 
7703         unsigned long flags;
 
7704         struct ufs_hba *hba;
 
7706         hba = shost_priv(cmd->device->host);
 
7708         spin_lock_irqsave(hba->host->host_lock, flags);
 
7709         hba->force_reset = true;
 
7710         ufshcd_schedule_eh_work(hba);
 
7711         dev_err(hba->dev, "%s: reset in progress - 1\n", __func__);
 
7712         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
7714         flush_work(&hba->eh_work);
 
7716         spin_lock_irqsave(hba->host->host_lock, flags);
 
7717         if (hba->ufshcd_state == UFSHCD_STATE_ERROR)
 
7719         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
7725  * ufshcd_get_max_icc_level - calculate the ICC level
 
7726  * @sup_curr_uA: max. current supported by the regulator
 
7727  * @start_scan: row at the desc table to start scan from
 
7728  * @buff: power descriptor buffer
 
7730  * Returns calculated max ICC level for specific regulator
 
7732 static u32 ufshcd_get_max_icc_level(int sup_curr_uA, u32 start_scan,
 
7740         for (i = start_scan; i >= 0; i--) {
 
7741                 data = get_unaligned_be16(&buff[2 * i]);
 
7742                 unit = (data & ATTR_ICC_LVL_UNIT_MASK) >>
 
7743                                                 ATTR_ICC_LVL_UNIT_OFFSET;
 
7744                 curr_uA = data & ATTR_ICC_LVL_VALUE_MASK;
 
7746                 case UFSHCD_NANO_AMP:
 
7747                         curr_uA = curr_uA / 1000;
 
7749                 case UFSHCD_MILI_AMP:
 
7750                         curr_uA = curr_uA * 1000;
 
7753                         curr_uA = curr_uA * 1000 * 1000;
 
7755                 case UFSHCD_MICRO_AMP:
 
7759                 if (sup_curr_uA >= curr_uA)
 
7764                 pr_err("%s: Couldn't find valid icc_level = %d", __func__, i);
 
7771  * ufshcd_find_max_sup_active_icc_level - calculate the max ICC level
 
7772  * In case regulators are not initialized we'll return 0
 
7773  * @hba: per-adapter instance
 
7774  * @desc_buf: power descriptor buffer to extract ICC levels from.
 
7776  * Returns calculated ICC level
 
7778 static u32 ufshcd_find_max_sup_active_icc_level(struct ufs_hba *hba,
 
7783         if (!hba->vreg_info.vcc || !hba->vreg_info.vccq ||
 
7784                                                 !hba->vreg_info.vccq2) {
 
7786                  * Using dev_dbg to avoid messages during runtime PM to avoid
 
7787                  * never-ending cycles of messages written back to storage by
 
7788                  * user space causing runtime resume, causing more messages and
 
7792                         "%s: Regulator capability was not set, actvIccLevel=%d",
 
7793                                                         __func__, icc_level);
 
7797         if (hba->vreg_info.vcc->max_uA)
 
7798                 icc_level = ufshcd_get_max_icc_level(
 
7799                                 hba->vreg_info.vcc->max_uA,
 
7800                                 POWER_DESC_MAX_ACTV_ICC_LVLS - 1,
 
7801                                 &desc_buf[PWR_DESC_ACTIVE_LVLS_VCC_0]);
 
7803         if (hba->vreg_info.vccq->max_uA)
 
7804                 icc_level = ufshcd_get_max_icc_level(
 
7805                                 hba->vreg_info.vccq->max_uA,
 
7807                                 &desc_buf[PWR_DESC_ACTIVE_LVLS_VCCQ_0]);
 
7809         if (hba->vreg_info.vccq2->max_uA)
 
7810                 icc_level = ufshcd_get_max_icc_level(
 
7811                                 hba->vreg_info.vccq2->max_uA,
 
7813                                 &desc_buf[PWR_DESC_ACTIVE_LVLS_VCCQ2_0]);
 
7818 static void ufshcd_set_active_icc_lvl(struct ufs_hba *hba)
 
7824         desc_buf = kzalloc(QUERY_DESC_MAX_SIZE, GFP_KERNEL);
 
7828         ret = ufshcd_read_desc_param(hba, QUERY_DESC_IDN_POWER, 0, 0,
 
7829                                      desc_buf, QUERY_DESC_MAX_SIZE);
 
7832                         "%s: Failed reading power descriptor ret = %d",
 
7837         icc_level = ufshcd_find_max_sup_active_icc_level(hba, desc_buf);
 
7838         dev_dbg(hba->dev, "%s: setting icc_level 0x%x", __func__, icc_level);
 
7840         ret = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
 
7841                 QUERY_ATTR_IDN_ACTIVE_ICC_LVL, 0, 0, &icc_level);
 
7845                         "%s: Failed configuring bActiveICCLevel = %d ret = %d",
 
7846                         __func__, icc_level, ret);
 
7852 static inline void ufshcd_blk_pm_runtime_init(struct scsi_device *sdev)
 
7854         scsi_autopm_get_device(sdev);
 
7855         blk_pm_runtime_init(sdev->request_queue, &sdev->sdev_gendev);
 
7856         if (sdev->rpm_autosuspend)
 
7857                 pm_runtime_set_autosuspend_delay(&sdev->sdev_gendev,
 
7858                                                  RPM_AUTOSUSPEND_DELAY_MS);
 
7859         scsi_autopm_put_device(sdev);
 
7863  * ufshcd_scsi_add_wlus - Adds required W-LUs
 
7864  * @hba: per-adapter instance
 
7866  * UFS device specification requires the UFS devices to support 4 well known
 
7868  *      "REPORT_LUNS" (address: 01h)
 
7869  *      "UFS Device" (address: 50h)
 
7870  *      "RPMB" (address: 44h)
 
7871  *      "BOOT" (address: 30h)
 
7872  * UFS device's power management needs to be controlled by "POWER CONDITION"
 
7873  * field of SSU (START STOP UNIT) command. But this "power condition" field
 
7874  * will take effect only when its sent to "UFS device" well known logical unit
 
7875  * hence we require the scsi_device instance to represent this logical unit in
 
7876  * order for the UFS host driver to send the SSU command for power management.
 
7878  * We also require the scsi_device instance for "RPMB" (Replay Protected Memory
 
7879  * Block) LU so user space process can control this LU. User space may also
 
7880  * want to have access to BOOT LU.
 
7882  * This function adds scsi device instances for each of all well known LUs
 
7883  * (except "REPORT LUNS" LU).
 
7885  * Returns zero on success (all required W-LUs are added successfully),
 
7886  * non-zero error value on failure (if failed to add any of the required W-LU).
 
7888 static int ufshcd_scsi_add_wlus(struct ufs_hba *hba)
 
7891         struct scsi_device *sdev_boot, *sdev_rpmb;
 
7893         hba->ufs_device_wlun = __scsi_add_device(hba->host, 0, 0,
 
7894                 ufshcd_upiu_wlun_to_scsi_wlun(UFS_UPIU_UFS_DEVICE_WLUN), NULL);
 
7895         if (IS_ERR(hba->ufs_device_wlun)) {
 
7896                 ret = PTR_ERR(hba->ufs_device_wlun);
 
7897                 hba->ufs_device_wlun = NULL;
 
7900         scsi_device_put(hba->ufs_device_wlun);
 
7902         sdev_rpmb = __scsi_add_device(hba->host, 0, 0,
 
7903                 ufshcd_upiu_wlun_to_scsi_wlun(UFS_UPIU_RPMB_WLUN), NULL);
 
7904         if (IS_ERR(sdev_rpmb)) {
 
7905                 ret = PTR_ERR(sdev_rpmb);
 
7906                 goto remove_ufs_device_wlun;
 
7908         ufshcd_blk_pm_runtime_init(sdev_rpmb);
 
7909         scsi_device_put(sdev_rpmb);
 
7911         sdev_boot = __scsi_add_device(hba->host, 0, 0,
 
7912                 ufshcd_upiu_wlun_to_scsi_wlun(UFS_UPIU_BOOT_WLUN), NULL);
 
7913         if (IS_ERR(sdev_boot)) {
 
7914                 dev_err(hba->dev, "%s: BOOT WLUN not found\n", __func__);
 
7916                 ufshcd_blk_pm_runtime_init(sdev_boot);
 
7917                 scsi_device_put(sdev_boot);
 
7921 remove_ufs_device_wlun:
 
7922         scsi_remove_device(hba->ufs_device_wlun);
 
7927 static void ufshcd_wb_probe(struct ufs_hba *hba, const u8 *desc_buf)
 
7929         struct ufs_dev_info *dev_info = &hba->dev_info;
 
7931         u32 d_lu_wb_buf_alloc;
 
7932         u32 ext_ufs_feature;
 
7934         if (!ufshcd_is_wb_allowed(hba))
 
7938          * Probe WB only for UFS-2.2 and UFS-3.1 (and later) devices or
 
7939          * UFS devices with quirk UFS_DEVICE_QUIRK_SUPPORT_EXTENDED_FEATURES
 
7942         if (!(dev_info->wspecversion >= 0x310 ||
 
7943               dev_info->wspecversion == 0x220 ||
 
7944              (hba->dev_quirks & UFS_DEVICE_QUIRK_SUPPORT_EXTENDED_FEATURES)))
 
7947         ext_ufs_feature = get_unaligned_be32(desc_buf +
 
7948                                         DEVICE_DESC_PARAM_EXT_UFS_FEATURE_SUP);
 
7950         if (!(ext_ufs_feature & UFS_DEV_WRITE_BOOSTER_SUP))
 
7954          * WB may be supported but not configured while provisioning. The spec
 
7955          * says, in dedicated wb buffer mode, a max of 1 lun would have wb
 
7956          * buffer configured.
 
7958         dev_info->wb_buffer_type = desc_buf[DEVICE_DESC_PARAM_WB_TYPE];
 
7960         dev_info->b_presrv_uspc_en =
 
7961                 desc_buf[DEVICE_DESC_PARAM_WB_PRESRV_USRSPC_EN];
 
7963         if (dev_info->wb_buffer_type == WB_BUF_MODE_SHARED) {
 
7964                 if (!get_unaligned_be32(desc_buf +
 
7965                                    DEVICE_DESC_PARAM_WB_SHARED_ALLOC_UNITS))
 
7968                 for (lun = 0; lun < UFS_UPIU_MAX_WB_LUN_ID; lun++) {
 
7969                         d_lu_wb_buf_alloc = 0;
 
7970                         ufshcd_read_unit_desc_param(hba,
 
7972                                         UNIT_DESC_PARAM_WB_BUF_ALLOC_UNITS,
 
7973                                         (u8 *)&d_lu_wb_buf_alloc,
 
7974                                         sizeof(d_lu_wb_buf_alloc));
 
7975                         if (d_lu_wb_buf_alloc) {
 
7976                                 dev_info->wb_dedicated_lu = lun;
 
7981                 if (!d_lu_wb_buf_alloc)
 
7985         if (!ufshcd_is_wb_buf_lifetime_available(hba))
 
7991         hba->caps &= ~UFSHCD_CAP_WB_EN;
 
7994 static void ufshcd_temp_notif_probe(struct ufs_hba *hba, const u8 *desc_buf)
 
7996         struct ufs_dev_info *dev_info = &hba->dev_info;
 
7997         u32 ext_ufs_feature;
 
8000         if (!(hba->caps & UFSHCD_CAP_TEMP_NOTIF) || dev_info->wspecversion < 0x300)
 
8003         ext_ufs_feature = get_unaligned_be32(desc_buf + DEVICE_DESC_PARAM_EXT_UFS_FEATURE_SUP);
 
8005         if (ext_ufs_feature & UFS_DEV_LOW_TEMP_NOTIF)
 
8006                 mask |= MASK_EE_TOO_LOW_TEMP;
 
8008         if (ext_ufs_feature & UFS_DEV_HIGH_TEMP_NOTIF)
 
8009                 mask |= MASK_EE_TOO_HIGH_TEMP;
 
8012                 ufshcd_enable_ee(hba, mask);
 
8013                 ufs_hwmon_probe(hba, mask);
 
8017 static void ufshcd_ext_iid_probe(struct ufs_hba *hba, u8 *desc_buf)
 
8019         struct ufs_dev_info *dev_info = &hba->dev_info;
 
8020         u32 ext_ufs_feature;
 
8024         /* Only UFS-4.0 and above may support EXT_IID */
 
8025         if (dev_info->wspecversion < 0x400)
 
8028         ext_ufs_feature = get_unaligned_be32(desc_buf +
 
8029                                      DEVICE_DESC_PARAM_EXT_UFS_FEATURE_SUP);
 
8030         if (!(ext_ufs_feature & UFS_DEV_EXT_IID_SUP))
 
8033         err = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
8034                                       QUERY_ATTR_IDN_EXT_IID_EN, 0, 0, &ext_iid_en);
 
8036                 dev_err(hba->dev, "failed reading bEXTIIDEn. err = %d\n", err);
 
8039         dev_info->b_ext_iid_en = ext_iid_en;
 
8042 void ufshcd_fixup_dev_quirks(struct ufs_hba *hba,
 
8043                              const struct ufs_dev_quirk *fixups)
 
8045         const struct ufs_dev_quirk *f;
 
8046         struct ufs_dev_info *dev_info = &hba->dev_info;
 
8051         for (f = fixups; f->quirk; f++) {
 
8052                 if ((f->wmanufacturerid == dev_info->wmanufacturerid ||
 
8053                      f->wmanufacturerid == UFS_ANY_VENDOR) &&
 
8054                      ((dev_info->model &&
 
8055                        STR_PRFX_EQUAL(f->model, dev_info->model)) ||
 
8056                       !strcmp(f->model, UFS_ANY_MODEL)))
 
8057                         hba->dev_quirks |= f->quirk;
 
8060 EXPORT_SYMBOL_GPL(ufshcd_fixup_dev_quirks);
 
8062 static void ufs_fixup_device_setup(struct ufs_hba *hba)
 
8064         /* fix by general quirk table */
 
8065         ufshcd_fixup_dev_quirks(hba, ufs_fixups);
 
8067         /* allow vendors to fix quirks */
 
8068         ufshcd_vops_fixup_dev_quirks(hba);
 
8071 static int ufs_get_device_desc(struct ufs_hba *hba)
 
8075         u8 b_ufs_feature_sup;
 
8077         struct ufs_dev_info *dev_info = &hba->dev_info;
 
8079         desc_buf = kzalloc(QUERY_DESC_MAX_SIZE, GFP_KERNEL);
 
8085         err = ufshcd_read_desc_param(hba, QUERY_DESC_IDN_DEVICE, 0, 0, desc_buf,
 
8086                                      QUERY_DESC_MAX_SIZE);
 
8088                 dev_err(hba->dev, "%s: Failed reading Device Desc. err = %d\n",
 
8094          * getting vendor (manufacturerID) and Bank Index in big endian
 
8097         dev_info->wmanufacturerid = desc_buf[DEVICE_DESC_PARAM_MANF_ID] << 8 |
 
8098                                      desc_buf[DEVICE_DESC_PARAM_MANF_ID + 1];
 
8100         /* getting Specification Version in big endian format */
 
8101         dev_info->wspecversion = desc_buf[DEVICE_DESC_PARAM_SPEC_VER] << 8 |
 
8102                                       desc_buf[DEVICE_DESC_PARAM_SPEC_VER + 1];
 
8103         dev_info->bqueuedepth = desc_buf[DEVICE_DESC_PARAM_Q_DPTH];
 
8104         b_ufs_feature_sup = desc_buf[DEVICE_DESC_PARAM_UFS_FEAT];
 
8106         model_index = desc_buf[DEVICE_DESC_PARAM_PRDCT_NAME];
 
8108         if (dev_info->wspecversion >= UFS_DEV_HPB_SUPPORT_VERSION &&
 
8109             (b_ufs_feature_sup & UFS_DEV_HPB_SUPPORT)) {
 
8110                 bool hpb_en = false;
 
8112                 ufshpb_get_dev_info(hba, desc_buf);
 
8114                 if (!ufshpb_is_legacy(hba))
 
8115                         err = ufshcd_query_flag_retry(hba,
 
8116                                                       UPIU_QUERY_OPCODE_READ_FLAG,
 
8117                                                       QUERY_FLAG_IDN_HPB_EN, 0,
 
8120                 if (ufshpb_is_legacy(hba) || (!err && hpb_en))
 
8121                         dev_info->hpb_enabled = true;
 
8124         err = ufshcd_read_string_desc(hba, model_index,
 
8125                                       &dev_info->model, SD_ASCII_STD);
 
8127                 dev_err(hba->dev, "%s: Failed reading Product Name. err = %d\n",
 
8132         hba->luns_avail = desc_buf[DEVICE_DESC_PARAM_NUM_LU] +
 
8133                 desc_buf[DEVICE_DESC_PARAM_NUM_WLU];
 
8135         ufs_fixup_device_setup(hba);
 
8137         ufshcd_wb_probe(hba, desc_buf);
 
8139         ufshcd_temp_notif_probe(hba, desc_buf);
 
8141         if (hba->ext_iid_sup)
 
8142                 ufshcd_ext_iid_probe(hba, desc_buf);
 
8145          * ufshcd_read_string_desc returns size of the string
 
8146          * reset the error value
 
8155 static void ufs_put_device_desc(struct ufs_hba *hba)
 
8157         struct ufs_dev_info *dev_info = &hba->dev_info;
 
8159         kfree(dev_info->model);
 
8160         dev_info->model = NULL;
 
8164  * ufshcd_tune_pa_tactivate - Tunes PA_TActivate of local UniPro
 
8165  * @hba: per-adapter instance
 
8167  * PA_TActivate parameter can be tuned manually if UniPro version is less than
 
8168  * 1.61. PA_TActivate needs to be greater than or equal to peerM-PHY's
 
8169  * RX_MIN_ACTIVATETIME_CAPABILITY attribute. This optimal value can help reduce
 
8170  * the hibern8 exit latency.
 
8172  * Returns zero on success, non-zero error value on failure.
 
8174 static int ufshcd_tune_pa_tactivate(struct ufs_hba *hba)
 
8177         u32 peer_rx_min_activatetime = 0, tuned_pa_tactivate;
 
8179         ret = ufshcd_dme_peer_get(hba,
 
8181                                         RX_MIN_ACTIVATETIME_CAPABILITY,
 
8182                                         UIC_ARG_MPHY_RX_GEN_SEL_INDEX(0)),
 
8183                                   &peer_rx_min_activatetime);
 
8187         /* make sure proper unit conversion is applied */
 
8188         tuned_pa_tactivate =
 
8189                 ((peer_rx_min_activatetime * RX_MIN_ACTIVATETIME_UNIT_US)
 
8190                  / PA_TACTIVATE_TIME_UNIT_US);
 
8191         ret = ufshcd_dme_set(hba, UIC_ARG_MIB(PA_TACTIVATE),
 
8192                              tuned_pa_tactivate);
 
8199  * ufshcd_tune_pa_hibern8time - Tunes PA_Hibern8Time of local UniPro
 
8200  * @hba: per-adapter instance
 
8202  * PA_Hibern8Time parameter can be tuned manually if UniPro version is less than
 
8203  * 1.61. PA_Hibern8Time needs to be maximum of local M-PHY's
 
8204  * TX_HIBERN8TIME_CAPABILITY & peer M-PHY's RX_HIBERN8TIME_CAPABILITY.
 
8205  * This optimal value can help reduce the hibern8 exit latency.
 
8207  * Returns zero on success, non-zero error value on failure.
 
8209 static int ufshcd_tune_pa_hibern8time(struct ufs_hba *hba)
 
8212         u32 local_tx_hibern8_time_cap = 0, peer_rx_hibern8_time_cap = 0;
 
8213         u32 max_hibern8_time, tuned_pa_hibern8time;
 
8215         ret = ufshcd_dme_get(hba,
 
8216                              UIC_ARG_MIB_SEL(TX_HIBERN8TIME_CAPABILITY,
 
8217                                         UIC_ARG_MPHY_TX_GEN_SEL_INDEX(0)),
 
8218                                   &local_tx_hibern8_time_cap);
 
8222         ret = ufshcd_dme_peer_get(hba,
 
8223                                   UIC_ARG_MIB_SEL(RX_HIBERN8TIME_CAPABILITY,
 
8224                                         UIC_ARG_MPHY_RX_GEN_SEL_INDEX(0)),
 
8225                                   &peer_rx_hibern8_time_cap);
 
8229         max_hibern8_time = max(local_tx_hibern8_time_cap,
 
8230                                peer_rx_hibern8_time_cap);
 
8231         /* make sure proper unit conversion is applied */
 
8232         tuned_pa_hibern8time = ((max_hibern8_time * HIBERN8TIME_UNIT_US)
 
8233                                 / PA_HIBERN8_TIME_UNIT_US);
 
8234         ret = ufshcd_dme_set(hba, UIC_ARG_MIB(PA_HIBERN8TIME),
 
8235                              tuned_pa_hibern8time);
 
8241  * ufshcd_quirk_tune_host_pa_tactivate - Ensures that host PA_TACTIVATE is
 
8242  * less than device PA_TACTIVATE time.
 
8243  * @hba: per-adapter instance
 
8245  * Some UFS devices require host PA_TACTIVATE to be lower than device
 
8246  * PA_TACTIVATE, we need to enable UFS_DEVICE_QUIRK_HOST_PA_TACTIVATE quirk
 
8249  * Returns zero on success, non-zero error value on failure.
 
8251 static int ufshcd_quirk_tune_host_pa_tactivate(struct ufs_hba *hba)
 
8254         u32 granularity, peer_granularity;
 
8255         u32 pa_tactivate, peer_pa_tactivate;
 
8256         u32 pa_tactivate_us, peer_pa_tactivate_us;
 
8257         static const u8 gran_to_us_table[] = {1, 4, 8, 16, 32, 100};
 
8259         ret = ufshcd_dme_get(hba, UIC_ARG_MIB(PA_GRANULARITY),
 
8264         ret = ufshcd_dme_peer_get(hba, UIC_ARG_MIB(PA_GRANULARITY),
 
8269         if ((granularity < PA_GRANULARITY_MIN_VAL) ||
 
8270             (granularity > PA_GRANULARITY_MAX_VAL)) {
 
8271                 dev_err(hba->dev, "%s: invalid host PA_GRANULARITY %d",
 
8272                         __func__, granularity);
 
8276         if ((peer_granularity < PA_GRANULARITY_MIN_VAL) ||
 
8277             (peer_granularity > PA_GRANULARITY_MAX_VAL)) {
 
8278                 dev_err(hba->dev, "%s: invalid device PA_GRANULARITY %d",
 
8279                         __func__, peer_granularity);
 
8283         ret = ufshcd_dme_get(hba, UIC_ARG_MIB(PA_TACTIVATE), &pa_tactivate);
 
8287         ret = ufshcd_dme_peer_get(hba, UIC_ARG_MIB(PA_TACTIVATE),
 
8288                                   &peer_pa_tactivate);
 
8292         pa_tactivate_us = pa_tactivate * gran_to_us_table[granularity - 1];
 
8293         peer_pa_tactivate_us = peer_pa_tactivate *
 
8294                              gran_to_us_table[peer_granularity - 1];
 
8296         if (pa_tactivate_us >= peer_pa_tactivate_us) {
 
8297                 u32 new_peer_pa_tactivate;
 
8299                 new_peer_pa_tactivate = pa_tactivate_us /
 
8300                                       gran_to_us_table[peer_granularity - 1];
 
8301                 new_peer_pa_tactivate++;
 
8302                 ret = ufshcd_dme_peer_set(hba, UIC_ARG_MIB(PA_TACTIVATE),
 
8303                                           new_peer_pa_tactivate);
 
8310 static void ufshcd_tune_unipro_params(struct ufs_hba *hba)
 
8312         if (ufshcd_is_unipro_pa_params_tuning_req(hba)) {
 
8313                 ufshcd_tune_pa_tactivate(hba);
 
8314                 ufshcd_tune_pa_hibern8time(hba);
 
8317         ufshcd_vops_apply_dev_quirks(hba);
 
8319         if (hba->dev_quirks & UFS_DEVICE_QUIRK_PA_TACTIVATE)
 
8320                 /* set 1ms timeout for PA_TACTIVATE */
 
8321                 ufshcd_dme_set(hba, UIC_ARG_MIB(PA_TACTIVATE), 10);
 
8323         if (hba->dev_quirks & UFS_DEVICE_QUIRK_HOST_PA_TACTIVATE)
 
8324                 ufshcd_quirk_tune_host_pa_tactivate(hba);
 
8327 static void ufshcd_clear_dbg_ufs_stats(struct ufs_hba *hba)
 
8329         hba->ufs_stats.hibern8_exit_cnt = 0;
 
8330         hba->ufs_stats.last_hibern8_exit_tstamp = ktime_set(0, 0);
 
8331         hba->req_abort_count = 0;
 
8334 static int ufshcd_device_geo_params_init(struct ufs_hba *hba)
 
8339         desc_buf = kzalloc(QUERY_DESC_MAX_SIZE, GFP_KERNEL);
 
8345         err = ufshcd_read_desc_param(hba, QUERY_DESC_IDN_GEOMETRY, 0, 0,
 
8346                                      desc_buf, QUERY_DESC_MAX_SIZE);
 
8348                 dev_err(hba->dev, "%s: Failed reading Geometry Desc. err = %d\n",
 
8353         if (desc_buf[GEOMETRY_DESC_PARAM_MAX_NUM_LUN] == 1)
 
8354                 hba->dev_info.max_lu_supported = 32;
 
8355         else if (desc_buf[GEOMETRY_DESC_PARAM_MAX_NUM_LUN] == 0)
 
8356                 hba->dev_info.max_lu_supported = 8;
 
8358         if (desc_buf[QUERY_DESC_LENGTH_OFFSET] >=
 
8359                 GEOMETRY_DESC_PARAM_HPB_MAX_ACTIVE_REGS)
 
8360                 ufshpb_get_geo_info(hba, desc_buf);
 
8367 struct ufs_ref_clk {
 
8368         unsigned long freq_hz;
 
8369         enum ufs_ref_clk_freq val;
 
8372 static const struct ufs_ref_clk ufs_ref_clk_freqs[] = {
 
8373         {19200000, REF_CLK_FREQ_19_2_MHZ},
 
8374         {26000000, REF_CLK_FREQ_26_MHZ},
 
8375         {38400000, REF_CLK_FREQ_38_4_MHZ},
 
8376         {52000000, REF_CLK_FREQ_52_MHZ},
 
8377         {0, REF_CLK_FREQ_INVAL},
 
8380 static enum ufs_ref_clk_freq
 
8381 ufs_get_bref_clk_from_hz(unsigned long freq)
 
8385         for (i = 0; ufs_ref_clk_freqs[i].freq_hz; i++)
 
8386                 if (ufs_ref_clk_freqs[i].freq_hz == freq)
 
8387                         return ufs_ref_clk_freqs[i].val;
 
8389         return REF_CLK_FREQ_INVAL;
 
8392 void ufshcd_parse_dev_ref_clk_freq(struct ufs_hba *hba, struct clk *refclk)
 
8396         freq = clk_get_rate(refclk);
 
8398         hba->dev_ref_clk_freq =
 
8399                 ufs_get_bref_clk_from_hz(freq);
 
8401         if (hba->dev_ref_clk_freq == REF_CLK_FREQ_INVAL)
 
8403                 "invalid ref_clk setting = %ld\n", freq);
 
8406 static int ufshcd_set_dev_ref_clk(struct ufs_hba *hba)
 
8410         u32 freq = hba->dev_ref_clk_freq;
 
8412         err = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_READ_ATTR,
 
8413                         QUERY_ATTR_IDN_REF_CLK_FREQ, 0, 0, &ref_clk);
 
8416                 dev_err(hba->dev, "failed reading bRefClkFreq. err = %d\n",
 
8421         if (ref_clk == freq)
 
8422                 goto out; /* nothing to update */
 
8424         err = ufshcd_query_attr_retry(hba, UPIU_QUERY_OPCODE_WRITE_ATTR,
 
8425                         QUERY_ATTR_IDN_REF_CLK_FREQ, 0, 0, &freq);
 
8428                 dev_err(hba->dev, "bRefClkFreq setting to %lu Hz failed\n",
 
8429                         ufs_ref_clk_freqs[freq].freq_hz);
 
8433         dev_dbg(hba->dev, "bRefClkFreq setting to %lu Hz succeeded\n",
 
8434                         ufs_ref_clk_freqs[freq].freq_hz);
 
8440 static int ufshcd_device_params_init(struct ufs_hba *hba)
 
8445         /* Init UFS geometry descriptor related parameters */
 
8446         ret = ufshcd_device_geo_params_init(hba);
 
8450         /* Check and apply UFS device quirks */
 
8451         ret = ufs_get_device_desc(hba);
 
8453                 dev_err(hba->dev, "%s: Failed getting device info. err = %d\n",
 
8458         ufshcd_get_ref_clk_gating_wait(hba);
 
8460         if (!ufshcd_query_flag_retry(hba, UPIU_QUERY_OPCODE_READ_FLAG,
 
8461                         QUERY_FLAG_IDN_PWR_ON_WPE, 0, &flag))
 
8462                 hba->dev_info.f_power_on_wp_en = flag;
 
8464         /* Probe maximum power mode co-supported by both UFS host and device */
 
8465         if (ufshcd_get_max_pwr_mode(hba))
 
8467                         "%s: Failed getting max supported power mode\n",
 
8474  * ufshcd_add_lus - probe and add UFS logical units
 
8475  * @hba: per-adapter instance
 
8477 static int ufshcd_add_lus(struct ufs_hba *hba)
 
8481         /* Add required well known logical units to scsi mid layer */
 
8482         ret = ufshcd_scsi_add_wlus(hba);
 
8486         /* Initialize devfreq after UFS device is detected */
 
8487         if (ufshcd_is_clkscaling_supported(hba)) {
 
8488                 memcpy(&hba->clk_scaling.saved_pwr_info,
 
8490                         sizeof(struct ufs_pa_layer_attr));
 
8491                 hba->clk_scaling.is_allowed = true;
 
8493                 ret = ufshcd_devfreq_init(hba);
 
8497                 hba->clk_scaling.is_enabled = true;
 
8498                 ufshcd_init_clk_scaling_sysfs(hba);
 
8503         scsi_scan_host(hba->host);
 
8504         pm_runtime_put_sync(hba->dev);
 
8510 /* SDB - Single Doorbell */
 
8511 static void ufshcd_release_sdb_queue(struct ufs_hba *hba, int nutrs)
 
8513         size_t ucdl_size, utrdl_size;
 
8515         ucdl_size = sizeof(struct utp_transfer_cmd_desc) * nutrs;
 
8516         dmam_free_coherent(hba->dev, ucdl_size, hba->ucdl_base_addr,
 
8517                            hba->ucdl_dma_addr);
 
8519         utrdl_size = sizeof(struct utp_transfer_req_desc) * nutrs;
 
8520         dmam_free_coherent(hba->dev, utrdl_size, hba->utrdl_base_addr,
 
8521                            hba->utrdl_dma_addr);
 
8523         devm_kfree(hba->dev, hba->lrb);
 
8526 static int ufshcd_alloc_mcq(struct ufs_hba *hba)
 
8529         int old_nutrs = hba->nutrs;
 
8531         ret = ufshcd_mcq_decide_queue_depth(hba);
 
8536         ret = ufshcd_mcq_init(hba);
 
8541          * Previously allocated memory for nutrs may not be enough in MCQ mode.
 
8542          * Number of supported tags in MCQ mode may be larger than SDB mode.
 
8544         if (hba->nutrs != old_nutrs) {
 
8545                 ufshcd_release_sdb_queue(hba, old_nutrs);
 
8546                 ret = ufshcd_memory_alloc(hba);
 
8549                 ufshcd_host_memory_configure(hba);
 
8552         ret = ufshcd_mcq_memory_alloc(hba);
 
8558         hba->nutrs = old_nutrs;
 
8562 static void ufshcd_config_mcq(struct ufs_hba *hba)
 
8566         ret = ufshcd_mcq_vops_config_esi(hba);
 
8567         dev_info(hba->dev, "ESI %sconfigured\n", ret ? "is not " : "");
 
8569         ufshcd_enable_intr(hba, UFSHCD_ENABLE_MCQ_INTRS);
 
8570         ufshcd_mcq_make_queues_operational(hba);
 
8571         ufshcd_mcq_config_mac(hba, hba->nutrs);
 
8573         hba->host->can_queue = hba->nutrs - UFSHCD_NUM_RESERVED;
 
8574         hba->reserved_slot = hba->nutrs - UFSHCD_NUM_RESERVED;
 
8576         /* Select MCQ mode */
 
8577         ufshcd_writel(hba, ufshcd_readl(hba, REG_UFS_MEM_CFG) | 0x1,
 
8579         hba->mcq_enabled = true;
 
8581         dev_info(hba->dev, "MCQ configured, nr_queues=%d, io_queues=%d, read_queue=%d, poll_queues=%d, queue_depth=%d\n",
 
8582                  hba->nr_hw_queues, hba->nr_queues[HCTX_TYPE_DEFAULT],
 
8583                  hba->nr_queues[HCTX_TYPE_READ], hba->nr_queues[HCTX_TYPE_POLL],
 
8587 static int ufshcd_device_init(struct ufs_hba *hba, bool init_dev_params)
 
8590         struct Scsi_Host *host = hba->host;
 
8592         hba->ufshcd_state = UFSHCD_STATE_RESET;
 
8594         ret = ufshcd_link_startup(hba);
 
8598         if (hba->quirks & UFSHCD_QUIRK_SKIP_PH_CONFIGURATION)
 
8601         /* Debug counters initialization */
 
8602         ufshcd_clear_dbg_ufs_stats(hba);
 
8604         /* UniPro link is active now */
 
8605         ufshcd_set_link_active(hba);
 
8607         /* Reconfigure MCQ upon reset */
 
8608         if (is_mcq_enabled(hba) && !init_dev_params)
 
8609                 ufshcd_config_mcq(hba);
 
8611         /* Verify device initialization by sending NOP OUT UPIU */
 
8612         ret = ufshcd_verify_dev_init(hba);
 
8616         /* Initiate UFS initialization, and waiting until completion */
 
8617         ret = ufshcd_complete_dev_init(hba);
 
8622          * Initialize UFS device parameters used by driver, these
 
8623          * parameters are associated with UFS descriptors.
 
8625         if (init_dev_params) {
 
8626                 ret = ufshcd_device_params_init(hba);
 
8629                 if (is_mcq_supported(hba) && !hba->scsi_host_added) {
 
8630                         ret = ufshcd_alloc_mcq(hba);
 
8632                                 ufshcd_config_mcq(hba);
 
8634                                 /* Continue with SDB mode */
 
8635                                 use_mcq_mode = false;
 
8636                                 dev_err(hba->dev, "MCQ mode is disabled, err=%d\n",
 
8639                         ret = scsi_add_host(host, hba->dev);
 
8641                                 dev_err(hba->dev, "scsi_add_host failed\n");
 
8644                         hba->scsi_host_added = true;
 
8645                 } else if (is_mcq_supported(hba)) {
 
8646                         /* UFSHCD_QUIRK_REINIT_AFTER_MAX_GEAR_SWITCH is set */
 
8647                         ufshcd_config_mcq(hba);
 
8651         ufshcd_tune_unipro_params(hba);
 
8653         /* UFS device is also active now */
 
8654         ufshcd_set_ufs_dev_active(hba);
 
8655         ufshcd_force_reset_auto_bkops(hba);
 
8657         /* Gear up to HS gear if supported */
 
8658         if (hba->max_pwr_info.is_valid) {
 
8660                  * Set the right value to bRefClkFreq before attempting to
 
8661                  * switch to HS gears.
 
8663                 if (hba->dev_ref_clk_freq != REF_CLK_FREQ_INVAL)
 
8664                         ufshcd_set_dev_ref_clk(hba);
 
8665                 ret = ufshcd_config_pwr_mode(hba, &hba->max_pwr_info.info);
 
8667                         dev_err(hba->dev, "%s: Failed setting power mode, err = %d\n",
 
8677  * ufshcd_probe_hba - probe hba to detect device and initialize it
 
8678  * @hba: per-adapter instance
 
8679  * @init_dev_params: whether or not to call ufshcd_device_params_init().
 
8681  * Execute link-startup and verify device initialization
 
8683 static int ufshcd_probe_hba(struct ufs_hba *hba, bool init_dev_params)
 
8685         ktime_t start = ktime_get();
 
8686         unsigned long flags;
 
8689         ret = ufshcd_device_init(hba, init_dev_params);
 
8693         if (hba->quirks & UFSHCD_QUIRK_REINIT_AFTER_MAX_GEAR_SWITCH) {
 
8694                 /* Reset the device and controller before doing reinit */
 
8695                 ufshcd_device_reset(hba);
 
8696                 ufshcd_hba_stop(hba);
 
8697                 ufshcd_vops_reinit_notify(hba);
 
8698                 ret = ufshcd_hba_enable(hba);
 
8700                         dev_err(hba->dev, "Host controller enable failed\n");
 
8701                         ufshcd_print_evt_hist(hba);
 
8702                         ufshcd_print_host_state(hba);
 
8706                 /* Reinit the device */
 
8707                 ret = ufshcd_device_init(hba, init_dev_params);
 
8712         ufshcd_print_pwr_info(hba);
 
8715          * bActiveICCLevel is volatile for UFS device (as per latest v2.1 spec)
 
8716          * and for removable UFS card as well, hence always set the parameter.
 
8717          * Note: Error handler may issue the device reset hence resetting
 
8718          * bActiveICCLevel as well so it is always safe to set this here.
 
8720         ufshcd_set_active_icc_lvl(hba);
 
8722         /* Enable UFS Write Booster if supported */
 
8723         ufshcd_configure_wb(hba);
 
8725         if (hba->ee_usr_mask)
 
8726                 ufshcd_write_ee_control(hba);
 
8727         /* Enable Auto-Hibernate if configured */
 
8728         ufshcd_auto_hibern8_enable(hba);
 
8730         ufshpb_toggle_state(hba, HPB_RESET, HPB_PRESENT);
 
8732         spin_lock_irqsave(hba->host->host_lock, flags);
 
8734                 hba->ufshcd_state = UFSHCD_STATE_ERROR;
 
8735         else if (hba->ufshcd_state == UFSHCD_STATE_RESET)
 
8736                 hba->ufshcd_state = UFSHCD_STATE_OPERATIONAL;
 
8737         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
8739         trace_ufshcd_init(dev_name(hba->dev), ret,
 
8740                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
8741                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
8746  * ufshcd_async_scan - asynchronous execution for probing hba
 
8747  * @data: data pointer to pass to this function
 
8748  * @cookie: cookie data
 
8750 static void ufshcd_async_scan(void *data, async_cookie_t cookie)
 
8752         struct ufs_hba *hba = (struct ufs_hba *)data;
 
8755         down(&hba->host_sem);
 
8756         /* Initialize hba, detect and initialize UFS device */
 
8757         ret = ufshcd_probe_hba(hba, true);
 
8762         /* Probe and add UFS logical units  */
 
8763         ret = ufshcd_add_lus(hba);
 
8766          * If we failed to initialize the device or the device is not
 
8767          * present, turn off the power/clocks etc.
 
8770                 pm_runtime_put_sync(hba->dev);
 
8771                 ufshcd_hba_exit(hba);
 
8775 static enum scsi_timeout_action ufshcd_eh_timed_out(struct scsi_cmnd *scmd)
 
8777         struct ufs_hba *hba = shost_priv(scmd->device->host);
 
8779         if (!hba->system_suspending) {
 
8780                 /* Activate the error handler in the SCSI core. */
 
8781                 return SCSI_EH_NOT_HANDLED;
 
8785          * If we get here we know that no TMFs are outstanding and also that
 
8786          * the only pending command is a START STOP UNIT command. Handle the
 
8787          * timeout of that command directly to prevent a deadlock between
 
8788          * ufshcd_set_dev_pwr_mode() and ufshcd_err_handler().
 
8790         ufshcd_link_recovery(hba);
 
8791         dev_info(hba->dev, "%s() finished; outstanding_tasks = %#lx.\n",
 
8792                  __func__, hba->outstanding_tasks);
 
8794         return hba->outstanding_reqs ? SCSI_EH_RESET_TIMER : SCSI_EH_DONE;
 
8797 static const struct attribute_group *ufshcd_driver_groups[] = {
 
8798         &ufs_sysfs_unit_descriptor_group,
 
8799         &ufs_sysfs_lun_attributes_group,
 
8800 #ifdef CONFIG_SCSI_UFS_HPB
 
8801         &ufs_sysfs_hpb_stat_group,
 
8802         &ufs_sysfs_hpb_param_group,
 
8807 static struct ufs_hba_variant_params ufs_hba_vps = {
 
8808         .hba_enable_delay_us            = 1000,
 
8809         .wb_flush_threshold             = UFS_WB_BUF_REMAIN_PERCENT(40),
 
8810         .devfreq_profile.polling_ms     = 100,
 
8811         .devfreq_profile.target         = ufshcd_devfreq_target,
 
8812         .devfreq_profile.get_dev_status = ufshcd_devfreq_get_dev_status,
 
8813         .ondemand_data.upthreshold      = 70,
 
8814         .ondemand_data.downdifferential = 5,
 
8817 static const struct scsi_host_template ufshcd_driver_template = {
 
8818         .module                 = THIS_MODULE,
 
8820         .proc_name              = UFSHCD,
 
8821         .map_queues             = ufshcd_map_queues,
 
8822         .queuecommand           = ufshcd_queuecommand,
 
8823         .mq_poll                = ufshcd_poll,
 
8824         .slave_alloc            = ufshcd_slave_alloc,
 
8825         .slave_configure        = ufshcd_slave_configure,
 
8826         .slave_destroy          = ufshcd_slave_destroy,
 
8827         .change_queue_depth     = ufshcd_change_queue_depth,
 
8828         .eh_abort_handler       = ufshcd_abort,
 
8829         .eh_device_reset_handler = ufshcd_eh_device_reset_handler,
 
8830         .eh_host_reset_handler   = ufshcd_eh_host_reset_handler,
 
8831         .eh_timed_out           = ufshcd_eh_timed_out,
 
8833         .sg_tablesize           = SG_ALL,
 
8834         .cmd_per_lun            = UFSHCD_CMD_PER_LUN,
 
8835         .can_queue              = UFSHCD_CAN_QUEUE,
 
8836         .max_segment_size       = PRDT_DATA_BYTE_COUNT_MAX,
 
8837         .max_sectors            = (1 << 20) / SECTOR_SIZE, /* 1 MiB */
 
8838         .max_host_blocked       = 1,
 
8839         .track_queue_depth      = 1,
 
8840         .skip_settle_delay      = 1,
 
8841         .sdev_groups            = ufshcd_driver_groups,
 
8842         .rpm_autosuspend_delay  = RPM_AUTOSUSPEND_DELAY_MS,
 
8845 static int ufshcd_config_vreg_load(struct device *dev, struct ufs_vreg *vreg,
 
8854          * "set_load" operation shall be required on those regulators
 
8855          * which specifically configured current limitation. Otherwise
 
8856          * zero max_uA may cause unexpected behavior when regulator is
 
8857          * enabled or set as high power mode.
 
8862         ret = regulator_set_load(vreg->reg, ua);
 
8864                 dev_err(dev, "%s: %s set load (ua=%d) failed, err=%d\n",
 
8865                                 __func__, vreg->name, ua, ret);
 
8871 static inline int ufshcd_config_vreg_lpm(struct ufs_hba *hba,
 
8872                                          struct ufs_vreg *vreg)
 
8874         return ufshcd_config_vreg_load(hba->dev, vreg, UFS_VREG_LPM_LOAD_UA);
 
8877 static inline int ufshcd_config_vreg_hpm(struct ufs_hba *hba,
 
8878                                          struct ufs_vreg *vreg)
 
8883         return ufshcd_config_vreg_load(hba->dev, vreg, vreg->max_uA);
 
8886 static int ufshcd_config_vreg(struct device *dev,
 
8887                 struct ufs_vreg *vreg, bool on)
 
8889         if (regulator_count_voltages(vreg->reg) <= 0)
 
8892         return ufshcd_config_vreg_load(dev, vreg, on ? vreg->max_uA : 0);
 
8895 static int ufshcd_enable_vreg(struct device *dev, struct ufs_vreg *vreg)
 
8899         if (!vreg || vreg->enabled)
 
8902         ret = ufshcd_config_vreg(dev, vreg, true);
 
8904                 ret = regulator_enable(vreg->reg);
 
8907                 vreg->enabled = true;
 
8909                 dev_err(dev, "%s: %s enable failed, err=%d\n",
 
8910                                 __func__, vreg->name, ret);
 
8915 static int ufshcd_disable_vreg(struct device *dev, struct ufs_vreg *vreg)
 
8919         if (!vreg || !vreg->enabled || vreg->always_on)
 
8922         ret = regulator_disable(vreg->reg);
 
8925                 /* ignore errors on applying disable config */
 
8926                 ufshcd_config_vreg(dev, vreg, false);
 
8927                 vreg->enabled = false;
 
8929                 dev_err(dev, "%s: %s disable failed, err=%d\n",
 
8930                                 __func__, vreg->name, ret);
 
8936 static int ufshcd_setup_vreg(struct ufs_hba *hba, bool on)
 
8939         struct device *dev = hba->dev;
 
8940         struct ufs_vreg_info *info = &hba->vreg_info;
 
8942         ret = ufshcd_toggle_vreg(dev, info->vcc, on);
 
8946         ret = ufshcd_toggle_vreg(dev, info->vccq, on);
 
8950         ret = ufshcd_toggle_vreg(dev, info->vccq2, on);
 
8954                 ufshcd_toggle_vreg(dev, info->vccq2, false);
 
8955                 ufshcd_toggle_vreg(dev, info->vccq, false);
 
8956                 ufshcd_toggle_vreg(dev, info->vcc, false);
 
8961 static int ufshcd_setup_hba_vreg(struct ufs_hba *hba, bool on)
 
8963         struct ufs_vreg_info *info = &hba->vreg_info;
 
8965         return ufshcd_toggle_vreg(hba->dev, info->vdd_hba, on);
 
8968 int ufshcd_get_vreg(struct device *dev, struct ufs_vreg *vreg)
 
8975         vreg->reg = devm_regulator_get(dev, vreg->name);
 
8976         if (IS_ERR(vreg->reg)) {
 
8977                 ret = PTR_ERR(vreg->reg);
 
8978                 dev_err(dev, "%s: %s get failed, err=%d\n",
 
8979                                 __func__, vreg->name, ret);
 
8984 EXPORT_SYMBOL_GPL(ufshcd_get_vreg);
 
8986 static int ufshcd_init_vreg(struct ufs_hba *hba)
 
8989         struct device *dev = hba->dev;
 
8990         struct ufs_vreg_info *info = &hba->vreg_info;
 
8992         ret = ufshcd_get_vreg(dev, info->vcc);
 
8996         ret = ufshcd_get_vreg(dev, info->vccq);
 
8998                 ret = ufshcd_get_vreg(dev, info->vccq2);
 
9003 static int ufshcd_init_hba_vreg(struct ufs_hba *hba)
 
9005         struct ufs_vreg_info *info = &hba->vreg_info;
 
9007         return ufshcd_get_vreg(hba->dev, info->vdd_hba);
 
9010 static int ufshcd_setup_clocks(struct ufs_hba *hba, bool on)
 
9013         struct ufs_clk_info *clki;
 
9014         struct list_head *head = &hba->clk_list_head;
 
9015         unsigned long flags;
 
9016         ktime_t start = ktime_get();
 
9017         bool clk_state_changed = false;
 
9019         if (list_empty(head))
 
9022         ret = ufshcd_vops_setup_clocks(hba, on, PRE_CHANGE);
 
9026         list_for_each_entry(clki, head, list) {
 
9027                 if (!IS_ERR_OR_NULL(clki->clk)) {
 
9029                          * Don't disable clocks which are needed
 
9030                          * to keep the link active.
 
9032                         if (ufshcd_is_link_active(hba) &&
 
9033                             clki->keep_link_active)
 
9036                         clk_state_changed = on ^ clki->enabled;
 
9037                         if (on && !clki->enabled) {
 
9038                                 ret = clk_prepare_enable(clki->clk);
 
9040                                         dev_err(hba->dev, "%s: %s prepare enable failed, %d\n",
 
9041                                                 __func__, clki->name, ret);
 
9044                         } else if (!on && clki->enabled) {
 
9045                                 clk_disable_unprepare(clki->clk);
 
9048                         dev_dbg(hba->dev, "%s: clk: %s %sabled\n", __func__,
 
9049                                         clki->name, on ? "en" : "dis");
 
9053         ret = ufshcd_vops_setup_clocks(hba, on, POST_CHANGE);
 
9059                 list_for_each_entry(clki, head, list) {
 
9060                         if (!IS_ERR_OR_NULL(clki->clk) && clki->enabled)
 
9061                                 clk_disable_unprepare(clki->clk);
 
9063         } else if (!ret && on) {
 
9064                 spin_lock_irqsave(hba->host->host_lock, flags);
 
9065                 hba->clk_gating.state = CLKS_ON;
 
9066                 trace_ufshcd_clk_gating(dev_name(hba->dev),
 
9067                                         hba->clk_gating.state);
 
9068                 spin_unlock_irqrestore(hba->host->host_lock, flags);
 
9071         if (clk_state_changed)
 
9072                 trace_ufshcd_profile_clk_gating(dev_name(hba->dev),
 
9073                         (on ? "on" : "off"),
 
9074                         ktime_to_us(ktime_sub(ktime_get(), start)), ret);
 
9078 static enum ufs_ref_clk_freq ufshcd_parse_ref_clk_property(struct ufs_hba *hba)
 
9081         int ret = device_property_read_u32(hba->dev, "ref-clk-freq", &freq);
 
9084                 dev_dbg(hba->dev, "Cannot query 'ref-clk-freq' property = %d", ret);
 
9085                 return REF_CLK_FREQ_INVAL;
 
9088         return ufs_get_bref_clk_from_hz(freq);
 
9091 static int ufshcd_init_clocks(struct ufs_hba *hba)
 
9094         struct ufs_clk_info *clki;
 
9095         struct device *dev = hba->dev;
 
9096         struct list_head *head = &hba->clk_list_head;
 
9098         if (list_empty(head))
 
9101         list_for_each_entry(clki, head, list) {
 
9105                 clki->clk = devm_clk_get(dev, clki->name);
 
9106                 if (IS_ERR(clki->clk)) {
 
9107                         ret = PTR_ERR(clki->clk);
 
9108                         dev_err(dev, "%s: %s clk get failed, %d\n",
 
9109                                         __func__, clki->name, ret);
 
9114                  * Parse device ref clk freq as per device tree "ref_clk".
 
9115                  * Default dev_ref_clk_freq is set to REF_CLK_FREQ_INVAL
 
9116                  * in ufshcd_alloc_host().
 
9118                 if (!strcmp(clki->name, "ref_clk"))
 
9119                         ufshcd_parse_dev_ref_clk_freq(hba, clki->clk);
 
9121                 if (clki->max_freq) {
 
9122                         ret = clk_set_rate(clki->clk, clki->max_freq);
 
9124                                 dev_err(hba->dev, "%s: %s clk set rate(%dHz) failed, %d\n",
 
9125                                         __func__, clki->name,
 
9126                                         clki->max_freq, ret);
 
9129                         clki->curr_freq = clki->max_freq;
 
9131                 dev_dbg(dev, "%s: clk: %s, rate: %lu\n", __func__,
 
9132                                 clki->name, clk_get_rate(clki->clk));
 
9138 static int ufshcd_variant_hba_init(struct ufs_hba *hba)
 
9145         err = ufshcd_vops_init(hba);
 
9147                 dev_err(hba->dev, "%s: variant %s init failed err %d\n",
 
9148                         __func__, ufshcd_get_var_name(hba), err);
 
9153 static void ufshcd_variant_hba_exit(struct ufs_hba *hba)
 
9158         ufshcd_vops_exit(hba);
 
9161 static int ufshcd_hba_init(struct ufs_hba *hba)
 
9166          * Handle host controller power separately from the UFS device power
 
9167          * rails as it will help controlling the UFS host controller power
 
9168          * collapse easily which is different than UFS device power collapse.
 
9169          * Also, enable the host controller power before we go ahead with rest
 
9170          * of the initialization here.
 
9172         err = ufshcd_init_hba_vreg(hba);
 
9176         err = ufshcd_setup_hba_vreg(hba, true);
 
9180         err = ufshcd_init_clocks(hba);
 
9182                 goto out_disable_hba_vreg;
 
9184         if (hba->dev_ref_clk_freq == REF_CLK_FREQ_INVAL)
 
9185                 hba->dev_ref_clk_freq = ufshcd_parse_ref_clk_property(hba);
 
9187         err = ufshcd_setup_clocks(hba, true);
 
9189                 goto out_disable_hba_vreg;
 
9191         err = ufshcd_init_vreg(hba);
 
9193                 goto out_disable_clks;
 
9195         err = ufshcd_setup_vreg(hba, true);
 
9197                 goto out_disable_clks;
 
9199         err = ufshcd_variant_hba_init(hba);
 
9201                 goto out_disable_vreg;
 
9203         ufs_debugfs_hba_init(hba);
 
9205         hba->is_powered = true;
 
9209         ufshcd_setup_vreg(hba, false);
 
9211         ufshcd_setup_clocks(hba, false);
 
9212 out_disable_hba_vreg:
 
9213         ufshcd_setup_hba_vreg(hba, false);
 
9218 static void ufshcd_hba_exit(struct ufs_hba *hba)
 
9220         if (hba->is_powered) {
 
9221                 ufshcd_exit_clk_scaling(hba);
 
9222                 ufshcd_exit_clk_gating(hba);
 
9224                         destroy_workqueue(hba->eh_wq);
 
9225                 ufs_debugfs_hba_exit(hba);
 
9226                 ufshcd_variant_hba_exit(hba);
 
9227                 ufshcd_setup_vreg(hba, false);
 
9228                 ufshcd_setup_clocks(hba, false);
 
9229                 ufshcd_setup_hba_vreg(hba, false);
 
9230                 hba->is_powered = false;
 
9231                 ufs_put_device_desc(hba);
 
9235 static int ufshcd_execute_start_stop(struct scsi_device *sdev,
 
9236                                      enum ufs_dev_pwr_mode pwr_mode,
 
9237                                      struct scsi_sense_hdr *sshdr)
 
9239         const unsigned char cdb[6] = { START_STOP, 0, 0, 0, pwr_mode << 4, 0 };
 
9240         const struct scsi_exec_args args = {
 
9242                 .req_flags = BLK_MQ_REQ_PM,
 
9243                 .scmd_flags = SCMD_FAIL_IF_RECOVERING,
 
9246         return scsi_execute_cmd(sdev, cdb, REQ_OP_DRV_IN, /*buffer=*/NULL,
 
9247                         /*bufflen=*/0, /*timeout=*/HZ, /*retries=*/0, &args);
 
9251  * ufshcd_set_dev_pwr_mode - sends START STOP UNIT command to set device
 
9253  * @hba: per adapter instance
 
9254  * @pwr_mode: device power mode to set
 
9256  * Returns 0 if requested power mode is set successfully
 
9257  * Returns < 0 if failed to set the requested power mode
 
9259 static int ufshcd_set_dev_pwr_mode(struct ufs_hba *hba,
 
9260                                      enum ufs_dev_pwr_mode pwr_mode)
 
9262         struct scsi_sense_hdr sshdr;
 
9263         struct scsi_device *sdp;
 
9264         unsigned long flags;
 
9267         spin_lock_irqsave(hba->host->host_lock, flags);
 
9268         sdp = hba->ufs_device_wlun;
 
9269         if (sdp && scsi_device_online(sdp))
 
9270                 ret = scsi_device_get(sdp);
 
9273         spin_unlock_irqrestore(hba->host->host_lock, flags);
 
9279          * If scsi commands fail, the scsi mid-layer schedules scsi error-
 
9280          * handling, which would wait for host to be resumed. Since we know
 
9281          * we are functional while we are here, skip host resume in error
 
9284         hba->host->eh_noresume = 1;
 
9287          * Current function would be generally called from the power management
 
9288          * callbacks hence set the RQF_PM flag so that it doesn't resume the
 
9289          * already suspended childs.
 
9291         for (retries = 3; retries > 0; --retries) {
 
9292                 ret = ufshcd_execute_start_stop(sdp, pwr_mode, &sshdr);
 
9294                  * scsi_execute() only returns a negative value if the request
 
9301                 sdev_printk(KERN_WARNING, sdp,
 
9302                             "START_STOP failed for power mode: %d, result %x\n",
 
9305                         if (scsi_sense_valid(&sshdr))
 
9306                                 scsi_print_sense_hdr(sdp, NULL, &sshdr);
 
9310                 hba->curr_dev_pwr_mode = pwr_mode;
 
9313         scsi_device_put(sdp);
 
9314         hba->host->eh_noresume = 0;
 
9318 static int ufshcd_link_state_transition(struct ufs_hba *hba,
 
9319                                         enum uic_link_state req_link_state,
 
9320                                         bool check_for_bkops)
 
9324         if (req_link_state == hba->uic_link_state)
 
9327         if (req_link_state == UIC_LINK_HIBERN8_STATE) {
 
9328                 ret = ufshcd_uic_hibern8_enter(hba);
 
9330                         ufshcd_set_link_hibern8(hba);
 
9332                         dev_err(hba->dev, "%s: hibern8 enter failed %d\n",
 
9338          * If autobkops is enabled, link can't be turned off because
 
9339          * turning off the link would also turn off the device, except in the
 
9340          * case of DeepSleep where the device is expected to remain powered.
 
9342         else if ((req_link_state == UIC_LINK_OFF_STATE) &&
 
9343                  (!check_for_bkops || !hba->auto_bkops_enabled)) {
 
9345                  * Let's make sure that link is in low power mode, we are doing
 
9346                  * this currently by putting the link in Hibern8. Otherway to
 
9347                  * put the link in low power mode is to send the DME end point
 
9348                  * to device and then send the DME reset command to local
 
9349                  * unipro. But putting the link in hibern8 is much faster.
 
9351                  * Note also that putting the link in Hibern8 is a requirement
 
9352                  * for entering DeepSleep.
 
9354                 ret = ufshcd_uic_hibern8_enter(hba);
 
9356                         dev_err(hba->dev, "%s: hibern8 enter failed %d\n",
 
9361                  * Change controller state to "reset state" which
 
9362                  * should also put the link in off/reset state
 
9364                 ufshcd_hba_stop(hba);
 
9366                  * TODO: Check if we need any delay to make sure that
 
9367                  * controller is reset
 
9369                 ufshcd_set_link_off(hba);
 
9376 static void ufshcd_vreg_set_lpm(struct ufs_hba *hba)
 
9378         bool vcc_off = false;
 
9381          * It seems some UFS devices may keep drawing more than sleep current
 
9382          * (atleast for 500us) from UFS rails (especially from VCCQ rail).
 
9383          * To avoid this situation, add 2ms delay before putting these UFS
 
9384          * rails in LPM mode.
 
9386         if (!ufshcd_is_link_active(hba) &&
 
9387             hba->dev_quirks & UFS_DEVICE_QUIRK_DELAY_BEFORE_LPM)
 
9388                 usleep_range(2000, 2100);
 
9391          * If UFS device is either in UFS_Sleep turn off VCC rail to save some
 
9394          * If UFS device and link is in OFF state, all power supplies (VCC,
 
9395          * VCCQ, VCCQ2) can be turned off if power on write protect is not
 
9396          * required. If UFS link is inactive (Hibern8 or OFF state) and device
 
9397          * is in sleep state, put VCCQ & VCCQ2 rails in LPM mode.
 
9399          * Ignore the error returned by ufshcd_toggle_vreg() as device is anyway
 
9400          * in low power state which would save some power.
 
9402          * If Write Booster is enabled and the device needs to flush the WB
 
9403          * buffer OR if bkops status is urgent for WB, keep Vcc on.
 
9405         if (ufshcd_is_ufs_dev_poweroff(hba) && ufshcd_is_link_off(hba) &&
 
9406             !hba->dev_info.is_lu_power_on_wp) {
 
9407                 ufshcd_setup_vreg(hba, false);
 
9409         } else if (!ufshcd_is_ufs_dev_active(hba)) {
 
9410                 ufshcd_toggle_vreg(hba->dev, hba->vreg_info.vcc, false);
 
9412                 if (ufshcd_is_link_hibern8(hba) || ufshcd_is_link_off(hba)) {
 
9413                         ufshcd_config_vreg_lpm(hba, hba->vreg_info.vccq);
 
9414                         ufshcd_config_vreg_lpm(hba, hba->vreg_info.vccq2);
 
9419          * Some UFS devices require delay after VCC power rail is turned-off.
 
9421         if (vcc_off && hba->vreg_info.vcc &&
 
9422                 hba->dev_quirks & UFS_DEVICE_QUIRK_DELAY_AFTER_LPM)
 
9423                 usleep_range(5000, 5100);
 
9427 static int ufshcd_vreg_set_hpm(struct ufs_hba *hba)
 
9431         if (ufshcd_is_ufs_dev_poweroff(hba) && ufshcd_is_link_off(hba) &&
 
9432             !hba->dev_info.is_lu_power_on_wp) {
 
9433                 ret = ufshcd_setup_vreg(hba, true);
 
9434         } else if (!ufshcd_is_ufs_dev_active(hba)) {
 
9435                 if (!ufshcd_is_link_active(hba)) {
 
9436                         ret = ufshcd_config_vreg_hpm(hba, hba->vreg_info.vccq);
 
9439                         ret = ufshcd_config_vreg_hpm(hba, hba->vreg_info.vccq2);
 
9443                 ret = ufshcd_toggle_vreg(hba->dev, hba->vreg_info.vcc, true);
 
9448         ufshcd_config_vreg_lpm(hba, hba->vreg_info.vccq);
 
9450         ufshcd_toggle_vreg(hba->dev, hba->vreg_info.vcc, false);
 
9454 #endif /* CONFIG_PM */
 
9456 static void ufshcd_hba_vreg_set_lpm(struct ufs_hba *hba)
 
9458         if (ufshcd_is_link_off(hba) || ufshcd_can_aggressive_pc(hba))
 
9459                 ufshcd_setup_hba_vreg(hba, false);
 
9462 static void ufshcd_hba_vreg_set_hpm(struct ufs_hba *hba)
 
9464         if (ufshcd_is_link_off(hba) || ufshcd_can_aggressive_pc(hba))
 
9465                 ufshcd_setup_hba_vreg(hba, true);
 
9468 static int __ufshcd_wl_suspend(struct ufs_hba *hba, enum ufs_pm_op pm_op)
 
9471         bool check_for_bkops;
 
9472         enum ufs_pm_level pm_lvl;
 
9473         enum ufs_dev_pwr_mode req_dev_pwr_mode;
 
9474         enum uic_link_state req_link_state;
 
9476         hba->pm_op_in_progress = true;
 
9477         if (pm_op != UFS_SHUTDOWN_PM) {
 
9478                 pm_lvl = pm_op == UFS_RUNTIME_PM ?
 
9479                          hba->rpm_lvl : hba->spm_lvl;
 
9480                 req_dev_pwr_mode = ufs_get_pm_lvl_to_dev_pwr_mode(pm_lvl);
 
9481                 req_link_state = ufs_get_pm_lvl_to_link_pwr_state(pm_lvl);
 
9483                 req_dev_pwr_mode = UFS_POWERDOWN_PWR_MODE;
 
9484                 req_link_state = UIC_LINK_OFF_STATE;
 
9487         ufshpb_suspend(hba);
 
9490          * If we can't transition into any of the low power modes
 
9491          * just gate the clocks.
 
9493         ufshcd_hold(hba, false);
 
9494         hba->clk_gating.is_suspended = true;
 
9496         if (ufshcd_is_clkscaling_supported(hba))
 
9497                 ufshcd_clk_scaling_suspend(hba, true);
 
9499         if (req_dev_pwr_mode == UFS_ACTIVE_PWR_MODE &&
 
9500                         req_link_state == UIC_LINK_ACTIVE_STATE) {
 
9504         if ((req_dev_pwr_mode == hba->curr_dev_pwr_mode) &&
 
9505             (req_link_state == hba->uic_link_state))
 
9506                 goto enable_scaling;
 
9508         /* UFS device & link must be active before we enter in this function */
 
9509         if (!ufshcd_is_ufs_dev_active(hba) || !ufshcd_is_link_active(hba)) {
 
9511                 goto enable_scaling;
 
9514         if (pm_op == UFS_RUNTIME_PM) {
 
9515                 if (ufshcd_can_autobkops_during_suspend(hba)) {
 
9517                          * The device is idle with no requests in the queue,
 
9518                          * allow background operations if bkops status shows
 
9519                          * that performance might be impacted.
 
9521                         ret = ufshcd_urgent_bkops(hba);
 
9523                                 goto enable_scaling;
 
9525                         /* make sure that auto bkops is disabled */
 
9526                         ufshcd_disable_auto_bkops(hba);
 
9529                  * If device needs to do BKOP or WB buffer flush during
 
9530                  * Hibern8, keep device power mode as "active power mode"
 
9533                 hba->dev_info.b_rpm_dev_flush_capable =
 
9534                         hba->auto_bkops_enabled ||
 
9535                         (((req_link_state == UIC_LINK_HIBERN8_STATE) ||
 
9536                         ((req_link_state == UIC_LINK_ACTIVE_STATE) &&
 
9537                         ufshcd_is_auto_hibern8_enabled(hba))) &&
 
9538                         ufshcd_wb_need_flush(hba));
 
9541         flush_work(&hba->eeh_work);
 
9543         ret = ufshcd_vops_suspend(hba, pm_op, PRE_CHANGE);
 
9545                 goto enable_scaling;
 
9547         if (req_dev_pwr_mode != hba->curr_dev_pwr_mode) {
 
9548                 if (pm_op != UFS_RUNTIME_PM)
 
9549                         /* ensure that bkops is disabled */
 
9550                         ufshcd_disable_auto_bkops(hba);
 
9552                 if (!hba->dev_info.b_rpm_dev_flush_capable) {
 
9553                         ret = ufshcd_set_dev_pwr_mode(hba, req_dev_pwr_mode);
 
9554                         if (ret && pm_op != UFS_SHUTDOWN_PM) {
 
9556                                  * If return err in suspend flow, IO will hang.
 
9557                                  * Trigger error handler and break suspend for
 
9560                                 ufshcd_force_error_recovery(hba);
 
9564                                 goto enable_scaling;
 
9569          * In the case of DeepSleep, the device is expected to remain powered
 
9570          * with the link off, so do not check for bkops.
 
9572         check_for_bkops = !ufshcd_is_ufs_dev_deepsleep(hba);
 
9573         ret = ufshcd_link_state_transition(hba, req_link_state, check_for_bkops);
 
9574         if (ret && pm_op != UFS_SHUTDOWN_PM) {
 
9576                  * If return err in suspend flow, IO will hang.
 
9577                  * Trigger error handler and break suspend for
 
9580                 ufshcd_force_error_recovery(hba);
 
9584                 goto set_dev_active;
 
9588          * Call vendor specific suspend callback. As these callbacks may access
 
9589          * vendor specific host controller register space call them before the
 
9590          * host clocks are ON.
 
9592         ret = ufshcd_vops_suspend(hba, pm_op, POST_CHANGE);
 
9594                 goto set_link_active;
 
9599          * Device hardware reset is required to exit DeepSleep. Also, for
 
9600          * DeepSleep, the link is off so host reset and restore will be done
 
9603         if (ufshcd_is_ufs_dev_deepsleep(hba)) {
 
9604                 ufshcd_device_reset(hba);
 
9605                 WARN_ON(!ufshcd_is_link_off(hba));
 
9607         if (ufshcd_is_link_hibern8(hba) && !ufshcd_uic_hibern8_exit(hba))
 
9608                 ufshcd_set_link_active(hba);
 
9609         else if (ufshcd_is_link_off(hba))
 
9610                 ufshcd_host_reset_and_restore(hba);
 
9612         /* Can also get here needing to exit DeepSleep */
 
9613         if (ufshcd_is_ufs_dev_deepsleep(hba)) {
 
9614                 ufshcd_device_reset(hba);
 
9615                 ufshcd_host_reset_and_restore(hba);
 
9617         if (!ufshcd_set_dev_pwr_mode(hba, UFS_ACTIVE_PWR_MODE))
 
9618                 ufshcd_disable_auto_bkops(hba);
 
9620         if (ufshcd_is_clkscaling_supported(hba))
 
9621                 ufshcd_clk_scaling_suspend(hba, false);
 
9623         hba->dev_info.b_rpm_dev_flush_capable = false;
 
9625         if (hba->dev_info.b_rpm_dev_flush_capable) {
 
9626                 schedule_delayed_work(&hba->rpm_dev_flush_recheck_work,
 
9627                         msecs_to_jiffies(RPM_DEV_FLUSH_RECHECK_WORK_DELAY_MS));
 
9631                 ufshcd_update_evt_hist(hba, UFS_EVT_WL_SUSP_ERR, (u32)ret);
 
9632                 hba->clk_gating.is_suspended = false;
 
9633                 ufshcd_release(hba);
 
9636         hba->pm_op_in_progress = false;
 
9641 static int __ufshcd_wl_resume(struct ufs_hba *hba, enum ufs_pm_op pm_op)
 
9644         enum uic_link_state old_link_state = hba->uic_link_state;
 
9646         hba->pm_op_in_progress = true;
 
9649          * Call vendor specific resume callback. As these callbacks may access
 
9650          * vendor specific host controller register space call them when the
 
9651          * host clocks are ON.
 
9653         ret = ufshcd_vops_resume(hba, pm_op);
 
9657         /* For DeepSleep, the only supported option is to have the link off */
 
9658         WARN_ON(ufshcd_is_ufs_dev_deepsleep(hba) && !ufshcd_is_link_off(hba));
 
9660         if (ufshcd_is_link_hibern8(hba)) {
 
9661                 ret = ufshcd_uic_hibern8_exit(hba);
 
9663                         ufshcd_set_link_active(hba);
 
9665                         dev_err(hba->dev, "%s: hibern8 exit failed %d\n",
 
9667                         goto vendor_suspend;
 
9669         } else if (ufshcd_is_link_off(hba)) {
 
9671                  * A full initialization of the host and the device is
 
9672                  * required since the link was put to off during suspend.
 
9673                  * Note, in the case of DeepSleep, the device will exit
 
9674                  * DeepSleep due to device reset.
 
9676                 ret = ufshcd_reset_and_restore(hba);
 
9678                  * ufshcd_reset_and_restore() should have already
 
9679                  * set the link state as active
 
9681                 if (ret || !ufshcd_is_link_active(hba))
 
9682                         goto vendor_suspend;
 
9685         if (!ufshcd_is_ufs_dev_active(hba)) {
 
9686                 ret = ufshcd_set_dev_pwr_mode(hba, UFS_ACTIVE_PWR_MODE);
 
9688                         goto set_old_link_state;
 
9691         if (ufshcd_keep_autobkops_enabled_except_suspend(hba))
 
9692                 ufshcd_enable_auto_bkops(hba);
 
9695                  * If BKOPs operations are urgently needed at this moment then
 
9696                  * keep auto-bkops enabled or else disable it.
 
9698                 ufshcd_urgent_bkops(hba);
 
9700         if (hba->ee_usr_mask)
 
9701                 ufshcd_write_ee_control(hba);
 
9703         if (ufshcd_is_clkscaling_supported(hba))
 
9704                 ufshcd_clk_scaling_suspend(hba, false);
 
9706         if (hba->dev_info.b_rpm_dev_flush_capable) {
 
9707                 hba->dev_info.b_rpm_dev_flush_capable = false;
 
9708                 cancel_delayed_work(&hba->rpm_dev_flush_recheck_work);
 
9711         /* Enable Auto-Hibernate if configured */
 
9712         ufshcd_auto_hibern8_enable(hba);
 
9718         ufshcd_link_state_transition(hba, old_link_state, 0);
 
9720         ufshcd_vops_suspend(hba, pm_op, PRE_CHANGE);
 
9721         ufshcd_vops_suspend(hba, pm_op, POST_CHANGE);
 
9724                 ufshcd_update_evt_hist(hba, UFS_EVT_WL_RES_ERR, (u32)ret);
 
9725         hba->clk_gating.is_suspended = false;
 
9726         ufshcd_release(hba);
 
9727         hba->pm_op_in_progress = false;
 
9731 static int ufshcd_wl_runtime_suspend(struct device *dev)
 
9733         struct scsi_device *sdev = to_scsi_device(dev);
 
9734         struct ufs_hba *hba;
 
9736         ktime_t start = ktime_get();
 
9738         hba = shost_priv(sdev->host);
 
9740         ret = __ufshcd_wl_suspend(hba, UFS_RUNTIME_PM);
 
9742                 dev_err(&sdev->sdev_gendev, "%s failed: %d\n", __func__, ret);
 
9744         trace_ufshcd_wl_runtime_suspend(dev_name(dev), ret,
 
9745                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
9746                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
9751 static int ufshcd_wl_runtime_resume(struct device *dev)
 
9753         struct scsi_device *sdev = to_scsi_device(dev);
 
9754         struct ufs_hba *hba;
 
9756         ktime_t start = ktime_get();
 
9758         hba = shost_priv(sdev->host);
 
9760         ret = __ufshcd_wl_resume(hba, UFS_RUNTIME_PM);
 
9762                 dev_err(&sdev->sdev_gendev, "%s failed: %d\n", __func__, ret);
 
9764         trace_ufshcd_wl_runtime_resume(dev_name(dev), ret,
 
9765                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
9766                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
9772 #ifdef CONFIG_PM_SLEEP
 
9773 static int ufshcd_wl_suspend(struct device *dev)
 
9775         struct scsi_device *sdev = to_scsi_device(dev);
 
9776         struct ufs_hba *hba;
 
9778         ktime_t start = ktime_get();
 
9780         hba = shost_priv(sdev->host);
 
9781         down(&hba->host_sem);
 
9782         hba->system_suspending = true;
 
9784         if (pm_runtime_suspended(dev))
 
9787         ret = __ufshcd_wl_suspend(hba, UFS_SYSTEM_PM);
 
9789                 dev_err(&sdev->sdev_gendev, "%s failed: %d\n", __func__,  ret);
 
9795                 hba->is_sys_suspended = true;
 
9796         trace_ufshcd_wl_suspend(dev_name(dev), ret,
 
9797                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
9798                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
9803 static int ufshcd_wl_resume(struct device *dev)
 
9805         struct scsi_device *sdev = to_scsi_device(dev);
 
9806         struct ufs_hba *hba;
 
9808         ktime_t start = ktime_get();
 
9810         hba = shost_priv(sdev->host);
 
9812         if (pm_runtime_suspended(dev))
 
9815         ret = __ufshcd_wl_resume(hba, UFS_SYSTEM_PM);
 
9817                 dev_err(&sdev->sdev_gendev, "%s failed: %d\n", __func__, ret);
 
9819         trace_ufshcd_wl_resume(dev_name(dev), ret,
 
9820                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
9821                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
9823                 hba->is_sys_suspended = false;
 
9824         hba->system_suspending = false;
 
9830 static void ufshcd_wl_shutdown(struct device *dev)
 
9832         struct scsi_device *sdev = to_scsi_device(dev);
 
9833         struct ufs_hba *hba;
 
9835         hba = shost_priv(sdev->host);
 
9837         down(&hba->host_sem);
 
9838         hba->shutting_down = true;
 
9841         /* Turn on everything while shutting down */
 
9842         ufshcd_rpm_get_sync(hba);
 
9843         scsi_device_quiesce(sdev);
 
9844         shost_for_each_device(sdev, hba->host) {
 
9845                 if (sdev == hba->ufs_device_wlun)
 
9847                 scsi_device_quiesce(sdev);
 
9849         __ufshcd_wl_suspend(hba, UFS_SHUTDOWN_PM);
 
9853  * ufshcd_suspend - helper function for suspend operations
 
9854  * @hba: per adapter instance
 
9856  * This function will put disable irqs, turn off clocks
 
9857  * and set vreg and hba-vreg in lpm mode.
 
9859 static int ufshcd_suspend(struct ufs_hba *hba)
 
9863         if (!hba->is_powered)
 
9866          * Disable the host irq as host controller as there won't be any
 
9867          * host controller transaction expected till resume.
 
9869         ufshcd_disable_irq(hba);
 
9870         ret = ufshcd_setup_clocks(hba, false);
 
9872                 ufshcd_enable_irq(hba);
 
9875         if (ufshcd_is_clkgating_allowed(hba)) {
 
9876                 hba->clk_gating.state = CLKS_OFF;
 
9877                 trace_ufshcd_clk_gating(dev_name(hba->dev),
 
9878                                         hba->clk_gating.state);
 
9881         ufshcd_vreg_set_lpm(hba);
 
9882         /* Put the host controller in low power mode if possible */
 
9883         ufshcd_hba_vreg_set_lpm(hba);
 
9889  * ufshcd_resume - helper function for resume operations
 
9890  * @hba: per adapter instance
 
9892  * This function basically turns on the regulators, clocks and
 
9895  * Returns 0 for success and non-zero for failure
 
9897 static int ufshcd_resume(struct ufs_hba *hba)
 
9901         if (!hba->is_powered)
 
9904         ufshcd_hba_vreg_set_hpm(hba);
 
9905         ret = ufshcd_vreg_set_hpm(hba);
 
9909         /* Make sure clocks are enabled before accessing controller */
 
9910         ret = ufshcd_setup_clocks(hba, true);
 
9914         /* enable the host irq as host controller would be active soon */
 
9915         ufshcd_enable_irq(hba);
 
9920         ufshcd_vreg_set_lpm(hba);
 
9923                 ufshcd_update_evt_hist(hba, UFS_EVT_RESUME_ERR, (u32)ret);
 
9926 #endif /* CONFIG_PM */
 
9928 #ifdef CONFIG_PM_SLEEP
 
9930  * ufshcd_system_suspend - system suspend callback
 
9931  * @dev: Device associated with the UFS controller.
 
9933  * Executed before putting the system into a sleep state in which the contents
 
9934  * of main memory are preserved.
 
9936  * Returns 0 for success and non-zero for failure
 
9938 int ufshcd_system_suspend(struct device *dev)
 
9940         struct ufs_hba *hba = dev_get_drvdata(dev);
 
9942         ktime_t start = ktime_get();
 
9944         if (pm_runtime_suspended(hba->dev))
 
9947         ret = ufshcd_suspend(hba);
 
9949         trace_ufshcd_system_suspend(dev_name(hba->dev), ret,
 
9950                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
9951                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
9954 EXPORT_SYMBOL(ufshcd_system_suspend);
 
9957  * ufshcd_system_resume - system resume callback
 
9958  * @dev: Device associated with the UFS controller.
 
9960  * Executed after waking the system up from a sleep state in which the contents
 
9961  * of main memory were preserved.
 
9963  * Returns 0 for success and non-zero for failure
 
9965 int ufshcd_system_resume(struct device *dev)
 
9967         struct ufs_hba *hba = dev_get_drvdata(dev);
 
9968         ktime_t start = ktime_get();
 
9971         if (pm_runtime_suspended(hba->dev))
 
9974         ret = ufshcd_resume(hba);
 
9977         trace_ufshcd_system_resume(dev_name(hba->dev), ret,
 
9978                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
9979                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
9983 EXPORT_SYMBOL(ufshcd_system_resume);
 
9984 #endif /* CONFIG_PM_SLEEP */
 
9988  * ufshcd_runtime_suspend - runtime suspend callback
 
9989  * @dev: Device associated with the UFS controller.
 
9991  * Check the description of ufshcd_suspend() function for more details.
 
9993  * Returns 0 for success and non-zero for failure
 
9995 int ufshcd_runtime_suspend(struct device *dev)
 
9997         struct ufs_hba *hba = dev_get_drvdata(dev);
 
9999         ktime_t start = ktime_get();
 
10001         ret = ufshcd_suspend(hba);
 
10003         trace_ufshcd_runtime_suspend(dev_name(hba->dev), ret,
 
10004                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
10005                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
10008 EXPORT_SYMBOL(ufshcd_runtime_suspend);
 
10011  * ufshcd_runtime_resume - runtime resume routine
 
10012  * @dev: Device associated with the UFS controller.
 
10014  * This function basically brings controller
 
10015  * to active state. Following operations are done in this function:
 
10017  * 1. Turn on all the controller related clocks
 
10018  * 2. Turn ON VCC rail
 
10020 int ufshcd_runtime_resume(struct device *dev)
 
10022         struct ufs_hba *hba = dev_get_drvdata(dev);
 
10024         ktime_t start = ktime_get();
 
10026         ret = ufshcd_resume(hba);
 
10028         trace_ufshcd_runtime_resume(dev_name(hba->dev), ret,
 
10029                 ktime_to_us(ktime_sub(ktime_get(), start)),
 
10030                 hba->curr_dev_pwr_mode, hba->uic_link_state);
 
10033 EXPORT_SYMBOL(ufshcd_runtime_resume);
 
10034 #endif /* CONFIG_PM */
 
10037  * ufshcd_shutdown - shutdown routine
 
10038  * @hba: per adapter instance
 
10040  * This function would turn off both UFS device and UFS hba
 
10041  * regulators. It would also disable clocks.
 
10043  * Returns 0 always to allow force shutdown even in case of errors.
 
10045 int ufshcd_shutdown(struct ufs_hba *hba)
 
10047         if (ufshcd_is_ufs_dev_poweroff(hba) && ufshcd_is_link_off(hba))
 
10048                 ufshcd_suspend(hba);
 
10050         hba->is_powered = false;
 
10051         /* allow force shutdown even in case of errors */
 
10054 EXPORT_SYMBOL(ufshcd_shutdown);
 
10057  * ufshcd_remove - de-allocate SCSI host and host memory space
 
10058  *              data structure memory
 
10059  * @hba: per adapter instance
 
10061 void ufshcd_remove(struct ufs_hba *hba)
 
10063         if (hba->ufs_device_wlun)
 
10064                 ufshcd_rpm_get_sync(hba);
 
10065         ufs_hwmon_remove(hba);
 
10066         ufs_bsg_remove(hba);
 
10067         ufshpb_remove(hba);
 
10068         ufs_sysfs_remove_nodes(hba->dev);
 
10069         blk_mq_destroy_queue(hba->tmf_queue);
 
10070         blk_put_queue(hba->tmf_queue);
 
10071         blk_mq_free_tag_set(&hba->tmf_tag_set);
 
10072         scsi_remove_host(hba->host);
 
10073         /* disable interrupts */
 
10074         ufshcd_disable_intr(hba, hba->intr_mask);
 
10075         ufshcd_hba_stop(hba);
 
10076         ufshcd_hba_exit(hba);
 
10078 EXPORT_SYMBOL_GPL(ufshcd_remove);
 
10080 #ifdef CONFIG_PM_SLEEP
 
10081 int ufshcd_system_freeze(struct device *dev)
 
10084         return ufshcd_system_suspend(dev);
 
10087 EXPORT_SYMBOL_GPL(ufshcd_system_freeze);
 
10089 int ufshcd_system_restore(struct device *dev)
 
10092         struct ufs_hba *hba = dev_get_drvdata(dev);
 
10095         ret = ufshcd_system_resume(dev);
 
10099         /* Configure UTRL and UTMRL base address registers */
 
10100         ufshcd_writel(hba, lower_32_bits(hba->utrdl_dma_addr),
 
10101                         REG_UTP_TRANSFER_REQ_LIST_BASE_L);
 
10102         ufshcd_writel(hba, upper_32_bits(hba->utrdl_dma_addr),
 
10103                         REG_UTP_TRANSFER_REQ_LIST_BASE_H);
 
10104         ufshcd_writel(hba, lower_32_bits(hba->utmrdl_dma_addr),
 
10105                         REG_UTP_TASK_REQ_LIST_BASE_L);
 
10106         ufshcd_writel(hba, upper_32_bits(hba->utmrdl_dma_addr),
 
10107                         REG_UTP_TASK_REQ_LIST_BASE_H);
 
10109          * Make sure that UTRL and UTMRL base address registers
 
10110          * are updated with the latest queue addresses. Only after
 
10111          * updating these addresses, we can queue the new commands.
 
10115         /* Resuming from hibernate, assume that link was OFF */
 
10116         ufshcd_set_link_off(hba);
 
10121 EXPORT_SYMBOL_GPL(ufshcd_system_restore);
 
10123 int ufshcd_system_thaw(struct device *dev)
 
10125         return ufshcd_system_resume(dev);
 
10127 EXPORT_SYMBOL_GPL(ufshcd_system_thaw);
 
10128 #endif /* CONFIG_PM_SLEEP  */
 
10131  * ufshcd_dealloc_host - deallocate Host Bus Adapter (HBA)
 
10132  * @hba: pointer to Host Bus Adapter (HBA)
 
10134 void ufshcd_dealloc_host(struct ufs_hba *hba)
 
10136         scsi_host_put(hba->host);
 
10138 EXPORT_SYMBOL_GPL(ufshcd_dealloc_host);
 
10141  * ufshcd_set_dma_mask - Set dma mask based on the controller
 
10142  *                       addressing capability
 
10143  * @hba: per adapter instance
 
10145  * Returns 0 for success, non-zero for failure
 
10147 static int ufshcd_set_dma_mask(struct ufs_hba *hba)
 
10149         if (hba->capabilities & MASK_64_ADDRESSING_SUPPORT) {
 
10150                 if (!dma_set_mask_and_coherent(hba->dev, DMA_BIT_MASK(64)))
 
10153         return dma_set_mask_and_coherent(hba->dev, DMA_BIT_MASK(32));
 
10157  * ufshcd_alloc_host - allocate Host Bus Adapter (HBA)
 
10158  * @dev: pointer to device handle
 
10159  * @hba_handle: driver private handle
 
10160  * Returns 0 on success, non-zero value on failure
 
10162 int ufshcd_alloc_host(struct device *dev, struct ufs_hba **hba_handle)
 
10164         struct Scsi_Host *host;
 
10165         struct ufs_hba *hba;
 
10170                 "Invalid memory reference for dev is NULL\n");
 
10175         host = scsi_host_alloc(&ufshcd_driver_template,
 
10176                                 sizeof(struct ufs_hba));
 
10178                 dev_err(dev, "scsi_host_alloc failed\n");
 
10182         host->nr_maps = HCTX_TYPE_POLL + 1;
 
10183         hba = shost_priv(host);
 
10186         hba->dev_ref_clk_freq = REF_CLK_FREQ_INVAL;
 
10187         hba->nop_out_timeout = NOP_OUT_TIMEOUT;
 
10188         ufshcd_set_sg_entry_size(hba, sizeof(struct ufshcd_sg_entry));
 
10189         INIT_LIST_HEAD(&hba->clk_list_head);
 
10190         spin_lock_init(&hba->outstanding_lock);
 
10197 EXPORT_SYMBOL(ufshcd_alloc_host);
 
10199 /* This function exists because blk_mq_alloc_tag_set() requires this. */
 
10200 static blk_status_t ufshcd_queue_tmf(struct blk_mq_hw_ctx *hctx,
 
10201                                      const struct blk_mq_queue_data *qd)
 
10203         WARN_ON_ONCE(true);
 
10204         return BLK_STS_NOTSUPP;
 
10207 static const struct blk_mq_ops ufshcd_tmf_ops = {
 
10208         .queue_rq = ufshcd_queue_tmf,
 
10212  * ufshcd_init - Driver initialization routine
 
10213  * @hba: per-adapter instance
 
10214  * @mmio_base: base register address
 
10215  * @irq: Interrupt line of device
 
10216  * Returns 0 on success, non-zero value on failure
 
10218 int ufshcd_init(struct ufs_hba *hba, void __iomem *mmio_base, unsigned int irq)
 
10221         struct Scsi_Host *host = hba->host;
 
10222         struct device *dev = hba->dev;
 
10223         char eh_wq_name[sizeof("ufs_eh_wq_00")];
 
10226          * dev_set_drvdata() must be called before any callbacks are registered
 
10227          * that use dev_get_drvdata() (frequency scaling, clock scaling, hwmon,
 
10230         dev_set_drvdata(dev, hba);
 
10234                 "Invalid memory reference for mmio_base is NULL\n");
 
10239         hba->mmio_base = mmio_base;
 
10241         hba->vps = &ufs_hba_vps;
 
10243         err = ufshcd_hba_init(hba);
 
10247         /* Read capabilities registers */
 
10248         err = ufshcd_hba_capabilities(hba);
 
10252         /* Get UFS version supported by the controller */
 
10253         hba->ufs_version = ufshcd_get_ufs_version(hba);
 
10255         /* Get Interrupt bit mask per version */
 
10256         hba->intr_mask = ufshcd_get_intr_mask(hba);
 
10258         err = ufshcd_set_dma_mask(hba);
 
10260                 dev_err(hba->dev, "set dma mask failed\n");
 
10264         /* Allocate memory for host memory space */
 
10265         err = ufshcd_memory_alloc(hba);
 
10267                 dev_err(hba->dev, "Memory allocation failed\n");
 
10271         /* Configure LRB */
 
10272         ufshcd_host_memory_configure(hba);
 
10274         host->can_queue = hba->nutrs - UFSHCD_NUM_RESERVED;
 
10275         host->cmd_per_lun = hba->nutrs - UFSHCD_NUM_RESERVED;
 
10276         host->max_id = UFSHCD_MAX_ID;
 
10277         host->max_lun = UFS_MAX_LUNS;
 
10278         host->max_channel = UFSHCD_MAX_CHANNEL;
 
10279         host->unique_id = host->host_no;
 
10280         host->max_cmd_len = UFS_CDB_SIZE;
 
10282         hba->max_pwr_info.is_valid = false;
 
10284         /* Initialize work queues */
 
10285         snprintf(eh_wq_name, sizeof(eh_wq_name), "ufs_eh_wq_%d",
 
10286                  hba->host->host_no);
 
10287         hba->eh_wq = create_singlethread_workqueue(eh_wq_name);
 
10289                 dev_err(hba->dev, "%s: failed to create eh workqueue\n",
 
10294         INIT_WORK(&hba->eh_work, ufshcd_err_handler);
 
10295         INIT_WORK(&hba->eeh_work, ufshcd_exception_event_handler);
 
10297         sema_init(&hba->host_sem, 1);
 
10299         /* Initialize UIC command mutex */
 
10300         mutex_init(&hba->uic_cmd_mutex);
 
10302         /* Initialize mutex for device management commands */
 
10303         mutex_init(&hba->dev_cmd.lock);
 
10305         /* Initialize mutex for exception event control */
 
10306         mutex_init(&hba->ee_ctrl_mutex);
 
10308         mutex_init(&hba->wb_mutex);
 
10309         init_rwsem(&hba->clk_scaling_lock);
 
10311         ufshcd_init_clk_gating(hba);
 
10313         ufshcd_init_clk_scaling(hba);
 
10316          * In order to avoid any spurious interrupt immediately after
 
10317          * registering UFS controller interrupt handler, clear any pending UFS
 
10318          * interrupt status and disable all the UFS interrupts.
 
10320         ufshcd_writel(hba, ufshcd_readl(hba, REG_INTERRUPT_STATUS),
 
10321                       REG_INTERRUPT_STATUS);
 
10322         ufshcd_writel(hba, 0, REG_INTERRUPT_ENABLE);
 
10324          * Make sure that UFS interrupts are disabled and any pending interrupt
 
10325          * status is cleared before registering UFS interrupt handler.
 
10329         /* IRQ registration */
 
10330         err = devm_request_irq(dev, irq, ufshcd_intr, IRQF_SHARED, UFSHCD, hba);
 
10332                 dev_err(hba->dev, "request irq failed\n");
 
10335                 hba->is_irq_enabled = true;
 
10338         if (!is_mcq_supported(hba)) {
 
10339                 err = scsi_add_host(host, hba->dev);
 
10341                         dev_err(hba->dev, "scsi_add_host failed\n");
 
10346         hba->tmf_tag_set = (struct blk_mq_tag_set) {
 
10348                 .queue_depth    = hba->nutmrs,
 
10349                 .ops            = &ufshcd_tmf_ops,
 
10350                 .flags          = BLK_MQ_F_NO_SCHED,
 
10352         err = blk_mq_alloc_tag_set(&hba->tmf_tag_set);
 
10354                 goto out_remove_scsi_host;
 
10355         hba->tmf_queue = blk_mq_init_queue(&hba->tmf_tag_set);
 
10356         if (IS_ERR(hba->tmf_queue)) {
 
10357                 err = PTR_ERR(hba->tmf_queue);
 
10358                 goto free_tmf_tag_set;
 
10360         hba->tmf_rqs = devm_kcalloc(hba->dev, hba->nutmrs,
 
10361                                     sizeof(*hba->tmf_rqs), GFP_KERNEL);
 
10362         if (!hba->tmf_rqs) {
 
10364                 goto free_tmf_queue;
 
10367         /* Reset the attached device */
 
10368         ufshcd_device_reset(hba);
 
10370         ufshcd_init_crypto(hba);
 
10372         /* Host controller enable */
 
10373         err = ufshcd_hba_enable(hba);
 
10375                 dev_err(hba->dev, "Host controller enable failed\n");
 
10376                 ufshcd_print_evt_hist(hba);
 
10377                 ufshcd_print_host_state(hba);
 
10378                 goto free_tmf_queue;
 
10382          * Set the default power management level for runtime and system PM.
 
10383          * Default power saving mode is to keep UFS link in Hibern8 state
 
10384          * and UFS device in sleep state.
 
10386         hba->rpm_lvl = ufs_get_desired_pm_lvl_for_dev_link_state(
 
10387                                                 UFS_SLEEP_PWR_MODE,
 
10388                                                 UIC_LINK_HIBERN8_STATE);
 
10389         hba->spm_lvl = ufs_get_desired_pm_lvl_for_dev_link_state(
 
10390                                                 UFS_SLEEP_PWR_MODE,
 
10391                                                 UIC_LINK_HIBERN8_STATE);
 
10393         INIT_DELAYED_WORK(&hba->rpm_dev_flush_recheck_work,
 
10394                           ufshcd_rpm_dev_flush_recheck_work);
 
10396         /* Set the default auto-hiberate idle timer value to 150 ms */
 
10397         if (ufshcd_is_auto_hibern8_supported(hba) && !hba->ahit) {
 
10398                 hba->ahit = FIELD_PREP(UFSHCI_AHIBERN8_TIMER_MASK, 150) |
 
10399                             FIELD_PREP(UFSHCI_AHIBERN8_SCALE_MASK, 3);
 
10402         /* Hold auto suspend until async scan completes */
 
10403         pm_runtime_get_sync(dev);
 
10404         atomic_set(&hba->scsi_block_reqs_cnt, 0);
 
10406          * We are assuming that device wasn't put in sleep/power-down
 
10407          * state exclusively during the boot stage before kernel.
 
10408          * This assumption helps avoid doing link startup twice during
 
10409          * ufshcd_probe_hba().
 
10411         ufshcd_set_ufs_dev_active(hba);
 
10413         async_schedule(ufshcd_async_scan, hba);
 
10414         ufs_sysfs_add_nodes(hba->dev);
 
10416         device_enable_async_suspend(dev);
 
10420         blk_mq_destroy_queue(hba->tmf_queue);
 
10421         blk_put_queue(hba->tmf_queue);
 
10423         blk_mq_free_tag_set(&hba->tmf_tag_set);
 
10424 out_remove_scsi_host:
 
10425         scsi_remove_host(hba->host);
 
10427         hba->is_irq_enabled = false;
 
10428         ufshcd_hba_exit(hba);
 
10432 EXPORT_SYMBOL_GPL(ufshcd_init);
 
10434 void ufshcd_resume_complete(struct device *dev)
 
10436         struct ufs_hba *hba = dev_get_drvdata(dev);
 
10438         if (hba->complete_put) {
 
10439                 ufshcd_rpm_put(hba);
 
10440                 hba->complete_put = false;
 
10443 EXPORT_SYMBOL_GPL(ufshcd_resume_complete);
 
10445 static bool ufshcd_rpm_ok_for_spm(struct ufs_hba *hba)
 
10447         struct device *dev = &hba->ufs_device_wlun->sdev_gendev;
 
10448         enum ufs_dev_pwr_mode dev_pwr_mode;
 
10449         enum uic_link_state link_state;
 
10450         unsigned long flags;
 
10453         spin_lock_irqsave(&dev->power.lock, flags);
 
10454         dev_pwr_mode = ufs_get_pm_lvl_to_dev_pwr_mode(hba->spm_lvl);
 
10455         link_state = ufs_get_pm_lvl_to_link_pwr_state(hba->spm_lvl);
 
10456         res = pm_runtime_suspended(dev) &&
 
10457               hba->curr_dev_pwr_mode == dev_pwr_mode &&
 
10458               hba->uic_link_state == link_state &&
 
10459               !hba->dev_info.b_rpm_dev_flush_capable;
 
10460         spin_unlock_irqrestore(&dev->power.lock, flags);
 
10465 int __ufshcd_suspend_prepare(struct device *dev, bool rpm_ok_for_spm)
 
10467         struct ufs_hba *hba = dev_get_drvdata(dev);
 
10471          * SCSI assumes that runtime-pm and system-pm for scsi drivers
 
10472          * are same. And it doesn't wake up the device for system-suspend
 
10473          * if it's runtime suspended. But ufs doesn't follow that.
 
10474          * Refer ufshcd_resume_complete()
 
10476         if (hba->ufs_device_wlun) {
 
10477                 /* Prevent runtime suspend */
 
10478                 ufshcd_rpm_get_noresume(hba);
 
10480                  * Check if already runtime suspended in same state as system
 
10481                  * suspend would be.
 
10483                 if (!rpm_ok_for_spm || !ufshcd_rpm_ok_for_spm(hba)) {
 
10484                         /* RPM state is not ok for SPM, so runtime resume */
 
10485                         ret = ufshcd_rpm_resume(hba);
 
10486                         if (ret < 0 && ret != -EACCES) {
 
10487                                 ufshcd_rpm_put(hba);
 
10491                 hba->complete_put = true;
 
10495 EXPORT_SYMBOL_GPL(__ufshcd_suspend_prepare);
 
10497 int ufshcd_suspend_prepare(struct device *dev)
 
10499         return __ufshcd_suspend_prepare(dev, true);
 
10501 EXPORT_SYMBOL_GPL(ufshcd_suspend_prepare);
 
10503 #ifdef CONFIG_PM_SLEEP
 
10504 static int ufshcd_wl_poweroff(struct device *dev)
 
10506         struct scsi_device *sdev = to_scsi_device(dev);
 
10507         struct ufs_hba *hba = shost_priv(sdev->host);
 
10509         __ufshcd_wl_suspend(hba, UFS_SHUTDOWN_PM);
 
10514 static int ufshcd_wl_probe(struct device *dev)
 
10516         struct scsi_device *sdev = to_scsi_device(dev);
 
10518         if (!is_device_wlun(sdev))
 
10521         blk_pm_runtime_init(sdev->request_queue, dev);
 
10522         pm_runtime_set_autosuspend_delay(dev, 0);
 
10523         pm_runtime_allow(dev);
 
10528 static int ufshcd_wl_remove(struct device *dev)
 
10530         pm_runtime_forbid(dev);
 
10534 static const struct dev_pm_ops ufshcd_wl_pm_ops = {
 
10535 #ifdef CONFIG_PM_SLEEP
 
10536         .suspend = ufshcd_wl_suspend,
 
10537         .resume = ufshcd_wl_resume,
 
10538         .freeze = ufshcd_wl_suspend,
 
10539         .thaw = ufshcd_wl_resume,
 
10540         .poweroff = ufshcd_wl_poweroff,
 
10541         .restore = ufshcd_wl_resume,
 
10543         SET_RUNTIME_PM_OPS(ufshcd_wl_runtime_suspend, ufshcd_wl_runtime_resume, NULL)
 
10547  * ufs_dev_wlun_template - describes ufs device wlun
 
10548  * ufs-device wlun - used to send pm commands
 
10549  * All luns are consumers of ufs-device wlun.
 
10551  * Currently, no sd driver is present for wluns.
 
10552  * Hence the no specific pm operations are performed.
 
10553  * With ufs design, SSU should be sent to ufs-device wlun.
 
10554  * Hence register a scsi driver for ufs wluns only.
 
10556 static struct scsi_driver ufs_dev_wlun_template = {
 
10558                 .name = "ufs_device_wlun",
 
10559                 .owner = THIS_MODULE,
 
10560                 .probe = ufshcd_wl_probe,
 
10561                 .remove = ufshcd_wl_remove,
 
10562                 .pm = &ufshcd_wl_pm_ops,
 
10563                 .shutdown = ufshcd_wl_shutdown,
 
10567 static int __init ufshcd_core_init(void)
 
10571         ufs_debugfs_init();
 
10573         ret = scsi_register_driver(&ufs_dev_wlun_template.gendrv);
 
10575                 ufs_debugfs_exit();
 
10579 static void __exit ufshcd_core_exit(void)
 
10581         ufs_debugfs_exit();
 
10582         scsi_unregister_driver(&ufs_dev_wlun_template.gendrv);
 
10585 module_init(ufshcd_core_init);
 
10586 module_exit(ufshcd_core_exit);
 
10588 MODULE_AUTHOR("Santosh Yaragnavi <santosh.sy@samsung.com>");
 
10589 MODULE_AUTHOR("Vinayak Holikatti <h.vinayak@samsung.com>");
 
10590 MODULE_DESCRIPTION("Generic UFS host controller driver Core");
 
10591 MODULE_SOFTDEP("pre: governor_simpleondemand");
 
10592 MODULE_LICENSE("GPL");