linux/arch/s390/kernel/time.c
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   1/*
   2 *    Time of day based timer functions.
   3 *
   4 *  S390 version
   5 *    Copyright IBM Corp. 1999, 2008
   6 *    Author(s): Hartmut Penner (hp@de.ibm.com),
   7 *               Martin Schwidefsky (schwidefsky@de.ibm.com),
   8 *               Denis Joseph Barrow (djbarrow@de.ibm.com,barrow_dj@yahoo.com)
   9 *
  10 *  Derived from "arch/i386/kernel/time.c"
  11 *    Copyright (C) 1991, 1992, 1995  Linus Torvalds
  12 */
  13
  14#define KMSG_COMPONENT "time"
  15#define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
  16
  17#include <linux/kernel_stat.h>
  18#include <linux/errno.h>
  19#include <linux/module.h>
  20#include <linux/sched.h>
  21#include <linux/kernel.h>
  22#include <linux/param.h>
  23#include <linux/string.h>
  24#include <linux/mm.h>
  25#include <linux/interrupt.h>
  26#include <linux/cpu.h>
  27#include <linux/stop_machine.h>
  28#include <linux/time.h>
  29#include <linux/device.h>
  30#include <linux/delay.h>
  31#include <linux/init.h>
  32#include <linux/smp.h>
  33#include <linux/types.h>
  34#include <linux/profile.h>
  35#include <linux/timex.h>
  36#include <linux/notifier.h>
  37#include <linux/timekeeper_internal.h>
  38#include <linux/clockchips.h>
  39#include <linux/gfp.h>
  40#include <linux/kprobes.h>
  41#include <asm/uaccess.h>
  42#include <asm/delay.h>
  43#include <asm/div64.h>
  44#include <asm/vdso.h>
  45#include <asm/irq.h>
  46#include <asm/irq_regs.h>
  47#include <asm/vtimer.h>
  48#include <asm/etr.h>
  49#include <asm/cio.h>
  50#include "entry.h"
  51
  52/* change this if you have some constant time drift */
  53#define USECS_PER_JIFFY     ((unsigned long) 1000000/HZ)
  54#define CLK_TICKS_PER_JIFFY ((unsigned long) USECS_PER_JIFFY << 12)
  55
  56u64 sched_clock_base_cc = -1;   /* Force to data section. */
  57EXPORT_SYMBOL_GPL(sched_clock_base_cc);
  58
  59static DEFINE_PER_CPU(struct clock_event_device, comparators);
  60
  61ATOMIC_NOTIFIER_HEAD(s390_epoch_delta_notifier);
  62EXPORT_SYMBOL(s390_epoch_delta_notifier);
  63
  64/*
  65 * Scheduler clock - returns current time in nanosec units.
  66 */
  67unsigned long long notrace sched_clock(void)
  68{
  69        return tod_to_ns(get_tod_clock_monotonic());
  70}
  71NOKPROBE_SYMBOL(sched_clock);
  72
  73/*
  74 * Monotonic_clock - returns # of nanoseconds passed since time_init()
  75 */
  76unsigned long long monotonic_clock(void)
  77{
  78        return sched_clock();
  79}
  80EXPORT_SYMBOL(monotonic_clock);
  81
  82void tod_to_timeval(__u64 todval, struct timespec64 *xt)
  83{
  84        unsigned long long sec;
  85
  86        sec = todval >> 12;
  87        do_div(sec, 1000000);
  88        xt->tv_sec = sec;
  89        todval -= (sec * 1000000) << 12;
  90        xt->tv_nsec = ((todval * 1000) >> 12);
  91}
  92EXPORT_SYMBOL(tod_to_timeval);
  93
  94void clock_comparator_work(void)
  95{
  96        struct clock_event_device *cd;
  97
  98        S390_lowcore.clock_comparator = -1ULL;
  99        cd = this_cpu_ptr(&comparators);
 100        cd->event_handler(cd);
 101}
 102
 103/*
 104 * Fixup the clock comparator.
 105 */
 106static void fixup_clock_comparator(unsigned long long delta)
 107{
 108        /* If nobody is waiting there's nothing to fix. */
 109        if (S390_lowcore.clock_comparator == -1ULL)
 110                return;
 111        S390_lowcore.clock_comparator += delta;
 112        set_clock_comparator(S390_lowcore.clock_comparator);
 113}
 114
 115static int s390_next_event(unsigned long delta,
 116                           struct clock_event_device *evt)
 117{
 118        S390_lowcore.clock_comparator = get_tod_clock() + delta;
 119        set_clock_comparator(S390_lowcore.clock_comparator);
 120        return 0;
 121}
 122
 123/*
 124 * Set up lowcore and control register of the current cpu to
 125 * enable TOD clock and clock comparator interrupts.
 126 */
 127void init_cpu_timer(void)
 128{
 129        struct clock_event_device *cd;
 130        int cpu;
 131
 132        S390_lowcore.clock_comparator = -1ULL;
 133        set_clock_comparator(S390_lowcore.clock_comparator);
 134
 135        cpu = smp_processor_id();
 136        cd = &per_cpu(comparators, cpu);
 137        cd->name                = "comparator";
 138        cd->features            = CLOCK_EVT_FEAT_ONESHOT;
 139        cd->mult                = 16777;
 140        cd->shift               = 12;
 141        cd->min_delta_ns        = 1;
 142        cd->max_delta_ns        = LONG_MAX;
 143        cd->rating              = 400;
 144        cd->cpumask             = cpumask_of(cpu);
 145        cd->set_next_event      = s390_next_event;
 146
 147        clockevents_register_device(cd);
 148
 149        /* Enable clock comparator timer interrupt. */
 150        __ctl_set_bit(0,11);
 151
 152        /* Always allow the timing alert external interrupt. */
 153        __ctl_set_bit(0, 4);
 154}
 155
 156static void clock_comparator_interrupt(struct ext_code ext_code,
 157                                       unsigned int param32,
 158                                       unsigned long param64)
 159{
 160        inc_irq_stat(IRQEXT_CLK);
 161        if (S390_lowcore.clock_comparator == -1ULL)
 162                set_clock_comparator(S390_lowcore.clock_comparator);
 163}
 164
 165static void etr_timing_alert(struct etr_irq_parm *);
 166static void stp_timing_alert(struct stp_irq_parm *);
 167
 168static void timing_alert_interrupt(struct ext_code ext_code,
 169                                   unsigned int param32, unsigned long param64)
 170{
 171        inc_irq_stat(IRQEXT_TLA);
 172        if (param32 & 0x00c40000)
 173                etr_timing_alert((struct etr_irq_parm *) &param32);
 174        if (param32 & 0x00038000)
 175                stp_timing_alert((struct stp_irq_parm *) &param32);
 176}
 177
 178static void etr_reset(void);
 179static void stp_reset(void);
 180
 181void read_persistent_clock64(struct timespec64 *ts)
 182{
 183        tod_to_timeval(get_tod_clock() - TOD_UNIX_EPOCH, ts);
 184}
 185
 186void read_boot_clock64(struct timespec64 *ts)
 187{
 188        tod_to_timeval(sched_clock_base_cc - TOD_UNIX_EPOCH, ts);
 189}
 190
 191static cycle_t read_tod_clock(struct clocksource *cs)
 192{
 193        return get_tod_clock();
 194}
 195
 196static struct clocksource clocksource_tod = {
 197        .name           = "tod",
 198        .rating         = 400,
 199        .read           = read_tod_clock,
 200        .mask           = -1ULL,
 201        .mult           = 1000,
 202        .shift          = 12,
 203        .flags          = CLOCK_SOURCE_IS_CONTINUOUS,
 204};
 205
 206struct clocksource * __init clocksource_default_clock(void)
 207{
 208        return &clocksource_tod;
 209}
 210
 211void update_vsyscall(struct timekeeper *tk)
 212{
 213        u64 nsecps;
 214
 215        if (tk->tkr_mono.clock != &clocksource_tod)
 216                return;
 217
 218        /* Make userspace gettimeofday spin until we're done. */
 219        ++vdso_data->tb_update_count;
 220        smp_wmb();
 221        vdso_data->xtime_tod_stamp = tk->tkr_mono.cycle_last;
 222        vdso_data->xtime_clock_sec = tk->xtime_sec;
 223        vdso_data->xtime_clock_nsec = tk->tkr_mono.xtime_nsec;
 224        vdso_data->wtom_clock_sec =
 225                tk->xtime_sec + tk->wall_to_monotonic.tv_sec;
 226        vdso_data->wtom_clock_nsec = tk->tkr_mono.xtime_nsec +
 227                + ((u64) tk->wall_to_monotonic.tv_nsec << tk->tkr_mono.shift);
 228        nsecps = (u64) NSEC_PER_SEC << tk->tkr_mono.shift;
 229        while (vdso_data->wtom_clock_nsec >= nsecps) {
 230                vdso_data->wtom_clock_nsec -= nsecps;
 231                vdso_data->wtom_clock_sec++;
 232        }
 233
 234        vdso_data->xtime_coarse_sec = tk->xtime_sec;
 235        vdso_data->xtime_coarse_nsec =
 236                (long)(tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift);
 237        vdso_data->wtom_coarse_sec =
 238                vdso_data->xtime_coarse_sec + tk->wall_to_monotonic.tv_sec;
 239        vdso_data->wtom_coarse_nsec =
 240                vdso_data->xtime_coarse_nsec + tk->wall_to_monotonic.tv_nsec;
 241        while (vdso_data->wtom_coarse_nsec >= NSEC_PER_SEC) {
 242                vdso_data->wtom_coarse_nsec -= NSEC_PER_SEC;
 243                vdso_data->wtom_coarse_sec++;
 244        }
 245
 246        vdso_data->tk_mult = tk->tkr_mono.mult;
 247        vdso_data->tk_shift = tk->tkr_mono.shift;
 248        smp_wmb();
 249        ++vdso_data->tb_update_count;
 250}
 251
 252extern struct timezone sys_tz;
 253
 254void update_vsyscall_tz(void)
 255{
 256        /* Make userspace gettimeofday spin until we're done. */
 257        ++vdso_data->tb_update_count;
 258        smp_wmb();
 259        vdso_data->tz_minuteswest = sys_tz.tz_minuteswest;
 260        vdso_data->tz_dsttime = sys_tz.tz_dsttime;
 261        smp_wmb();
 262        ++vdso_data->tb_update_count;
 263}
 264
 265/*
 266 * Initialize the TOD clock and the CPU timer of
 267 * the boot cpu.
 268 */
 269void __init time_init(void)
 270{
 271        /* Reset time synchronization interfaces. */
 272        etr_reset();
 273        stp_reset();
 274
 275        /* request the clock comparator external interrupt */
 276        if (register_external_irq(EXT_IRQ_CLK_COMP, clock_comparator_interrupt))
 277                panic("Couldn't request external interrupt 0x1004");
 278
 279        /* request the timing alert external interrupt */
 280        if (register_external_irq(EXT_IRQ_TIMING_ALERT, timing_alert_interrupt))
 281                panic("Couldn't request external interrupt 0x1406");
 282
 283        if (__clocksource_register(&clocksource_tod) != 0)
 284                panic("Could not register TOD clock source");
 285
 286        /* Enable TOD clock interrupts on the boot cpu. */
 287        init_cpu_timer();
 288
 289        /* Enable cpu timer interrupts on the boot cpu. */
 290        vtime_init();
 291}
 292
 293/*
 294 * The time is "clock". old is what we think the time is.
 295 * Adjust the value by a multiple of jiffies and add the delta to ntp.
 296 * "delay" is an approximation how long the synchronization took. If
 297 * the time correction is positive, then "delay" is subtracted from
 298 * the time difference and only the remaining part is passed to ntp.
 299 */
 300static unsigned long long adjust_time(unsigned long long old,
 301                                      unsigned long long clock,
 302                                      unsigned long long delay)
 303{
 304        unsigned long long delta, ticks;
 305        struct timex adjust;
 306
 307        if (clock > old) {
 308                /* It is later than we thought. */
 309                delta = ticks = clock - old;
 310                delta = ticks = (delta < delay) ? 0 : delta - delay;
 311                delta -= do_div(ticks, CLK_TICKS_PER_JIFFY);
 312                adjust.offset = ticks * (1000000 / HZ);
 313        } else {
 314                /* It is earlier than we thought. */
 315                delta = ticks = old - clock;
 316                delta -= do_div(ticks, CLK_TICKS_PER_JIFFY);
 317                delta = -delta;
 318                adjust.offset = -ticks * (1000000 / HZ);
 319        }
 320        sched_clock_base_cc += delta;
 321        if (adjust.offset != 0) {
 322                pr_notice("The ETR interface has adjusted the clock "
 323                          "by %li microseconds\n", adjust.offset);
 324                adjust.modes = ADJ_OFFSET_SINGLESHOT;
 325                do_adjtimex(&adjust);
 326        }
 327        return delta;
 328}
 329
 330static DEFINE_PER_CPU(atomic_t, clock_sync_word);
 331static DEFINE_MUTEX(clock_sync_mutex);
 332static unsigned long clock_sync_flags;
 333
 334#define CLOCK_SYNC_HAS_ETR      0
 335#define CLOCK_SYNC_HAS_STP      1
 336#define CLOCK_SYNC_ETR          2
 337#define CLOCK_SYNC_STP          3
 338
 339/*
 340 * The synchronous get_clock function. It will write the current clock
 341 * value to the clock pointer and return 0 if the clock is in sync with
 342 * the external time source. If the clock mode is local it will return
 343 * -EOPNOTSUPP and -EAGAIN if the clock is not in sync with the external
 344 * reference.
 345 */
 346int get_sync_clock(unsigned long long *clock)
 347{
 348        atomic_t *sw_ptr;
 349        unsigned int sw0, sw1;
 350
 351        sw_ptr = &get_cpu_var(clock_sync_word);
 352        sw0 = atomic_read(sw_ptr);
 353        *clock = get_tod_clock();
 354        sw1 = atomic_read(sw_ptr);
 355        put_cpu_var(clock_sync_word);
 356        if (sw0 == sw1 && (sw0 & 0x80000000U))
 357                /* Success: time is in sync. */
 358                return 0;
 359        if (!test_bit(CLOCK_SYNC_HAS_ETR, &clock_sync_flags) &&
 360            !test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
 361                return -EOPNOTSUPP;
 362        if (!test_bit(CLOCK_SYNC_ETR, &clock_sync_flags) &&
 363            !test_bit(CLOCK_SYNC_STP, &clock_sync_flags))
 364                return -EACCES;
 365        return -EAGAIN;
 366}
 367EXPORT_SYMBOL(get_sync_clock);
 368
 369/*
 370 * Make get_sync_clock return -EAGAIN.
 371 */
 372static void disable_sync_clock(void *dummy)
 373{
 374        atomic_t *sw_ptr = this_cpu_ptr(&clock_sync_word);
 375        /*
 376         * Clear the in-sync bit 2^31. All get_sync_clock calls will
 377         * fail until the sync bit is turned back on. In addition
 378         * increase the "sequence" counter to avoid the race of an
 379         * etr event and the complete recovery against get_sync_clock.
 380         */
 381        atomic_andnot(0x80000000, sw_ptr);
 382        atomic_inc(sw_ptr);
 383}
 384
 385/*
 386 * Make get_sync_clock return 0 again.
 387 * Needs to be called from a context disabled for preemption.
 388 */
 389static void enable_sync_clock(void)
 390{
 391        atomic_t *sw_ptr = this_cpu_ptr(&clock_sync_word);
 392        atomic_or(0x80000000, sw_ptr);
 393}
 394
 395/*
 396 * Function to check if the clock is in sync.
 397 */
 398static inline int check_sync_clock(void)
 399{
 400        atomic_t *sw_ptr;
 401        int rc;
 402
 403        sw_ptr = &get_cpu_var(clock_sync_word);
 404        rc = (atomic_read(sw_ptr) & 0x80000000U) != 0;
 405        put_cpu_var(clock_sync_word);
 406        return rc;
 407}
 408
 409/* Single threaded workqueue used for etr and stp sync events */
 410static struct workqueue_struct *time_sync_wq;
 411
 412static void __init time_init_wq(void)
 413{
 414        if (time_sync_wq)
 415                return;
 416        time_sync_wq = create_singlethread_workqueue("timesync");
 417}
 418
 419/*
 420 * External Time Reference (ETR) code.
 421 */
 422static int etr_port0_online;
 423static int etr_port1_online;
 424static int etr_steai_available;
 425
 426static int __init early_parse_etr(char *p)
 427{
 428        if (strncmp(p, "off", 3) == 0)
 429                etr_port0_online = etr_port1_online = 0;
 430        else if (strncmp(p, "port0", 5) == 0)
 431                etr_port0_online = 1;
 432        else if (strncmp(p, "port1", 5) == 0)
 433                etr_port1_online = 1;
 434        else if (strncmp(p, "on", 2) == 0)
 435                etr_port0_online = etr_port1_online = 1;
 436        return 0;
 437}
 438early_param("etr", early_parse_etr);
 439
 440enum etr_event {
 441        ETR_EVENT_PORT0_CHANGE,
 442        ETR_EVENT_PORT1_CHANGE,
 443        ETR_EVENT_PORT_ALERT,
 444        ETR_EVENT_SYNC_CHECK,
 445        ETR_EVENT_SWITCH_LOCAL,
 446        ETR_EVENT_UPDATE,
 447};
 448
 449/*
 450 * Valid bit combinations of the eacr register are (x = don't care):
 451 * e0 e1 dp p0 p1 ea es sl
 452 *  0  0  x  0  0  0  0  0  initial, disabled state
 453 *  0  0  x  0  1  1  0  0  port 1 online
 454 *  0  0  x  1  0  1  0  0  port 0 online
 455 *  0  0  x  1  1  1  0  0  both ports online
 456 *  0  1  x  0  1  1  0  0  port 1 online and usable, ETR or PPS mode
 457 *  0  1  x  0  1  1  0  1  port 1 online, usable and ETR mode
 458 *  0  1  x  0  1  1  1  0  port 1 online, usable, PPS mode, in-sync
 459 *  0  1  x  0  1  1  1  1  port 1 online, usable, ETR mode, in-sync
 460 *  0  1  x  1  1  1  0  0  both ports online, port 1 usable
 461 *  0  1  x  1  1  1  1  0  both ports online, port 1 usable, PPS mode, in-sync
 462 *  0  1  x  1  1  1  1  1  both ports online, port 1 usable, ETR mode, in-sync
 463 *  1  0  x  1  0  1  0  0  port 0 online and usable, ETR or PPS mode
 464 *  1  0  x  1  0  1  0  1  port 0 online, usable and ETR mode
 465 *  1  0  x  1  0  1  1  0  port 0 online, usable, PPS mode, in-sync
 466 *  1  0  x  1  0  1  1  1  port 0 online, usable, ETR mode, in-sync
 467 *  1  0  x  1  1  1  0  0  both ports online, port 0 usable
 468 *  1  0  x  1  1  1  1  0  both ports online, port 0 usable, PPS mode, in-sync
 469 *  1  0  x  1  1  1  1  1  both ports online, port 0 usable, ETR mode, in-sync
 470 *  1  1  x  1  1  1  1  0  both ports online & usable, ETR, in-sync
 471 *  1  1  x  1  1  1  1  1  both ports online & usable, ETR, in-sync
 472 */
 473static struct etr_eacr etr_eacr;
 474static u64 etr_tolec;                   /* time of last eacr update */
 475static struct etr_aib etr_port0;
 476static int etr_port0_uptodate;
 477static struct etr_aib etr_port1;
 478static int etr_port1_uptodate;
 479static unsigned long etr_events;
 480static struct timer_list etr_timer;
 481
 482static void etr_timeout(unsigned long dummy);
 483static void etr_work_fn(struct work_struct *work);
 484static DEFINE_MUTEX(etr_work_mutex);
 485static DECLARE_WORK(etr_work, etr_work_fn);
 486
 487/*
 488 * Reset ETR attachment.
 489 */
 490static void etr_reset(void)
 491{
 492        etr_eacr =  (struct etr_eacr) {
 493                .e0 = 0, .e1 = 0, ._pad0 = 4, .dp = 0,
 494                .p0 = 0, .p1 = 0, ._pad1 = 0, .ea = 0,
 495                .es = 0, .sl = 0 };
 496        if (etr_setr(&etr_eacr) == 0) {
 497                etr_tolec = get_tod_clock();
 498                set_bit(CLOCK_SYNC_HAS_ETR, &clock_sync_flags);
 499                if (etr_port0_online && etr_port1_online)
 500                        set_bit(CLOCK_SYNC_ETR, &clock_sync_flags);
 501        } else if (etr_port0_online || etr_port1_online) {
 502                pr_warning("The real or virtual hardware system does "
 503                           "not provide an ETR interface\n");
 504                etr_port0_online = etr_port1_online = 0;
 505        }
 506}
 507
 508static int __init etr_init(void)
 509{
 510        struct etr_aib aib;
 511
 512        if (!test_bit(CLOCK_SYNC_HAS_ETR, &clock_sync_flags))
 513                return 0;
 514        time_init_wq();
 515        /* Check if this machine has the steai instruction. */
 516        if (etr_steai(&aib, ETR_STEAI_STEPPING_PORT) == 0)
 517                etr_steai_available = 1;
 518        setup_timer(&etr_timer, etr_timeout, 0UL);
 519        if (etr_port0_online) {
 520                set_bit(ETR_EVENT_PORT0_CHANGE, &etr_events);
 521                queue_work(time_sync_wq, &etr_work);
 522        }
 523        if (etr_port1_online) {
 524                set_bit(ETR_EVENT_PORT1_CHANGE, &etr_events);
 525                queue_work(time_sync_wq, &etr_work);
 526        }
 527        return 0;
 528}
 529
 530arch_initcall(etr_init);
 531
 532/*
 533 * Two sorts of ETR machine checks. The architecture reads:
 534 * "When a machine-check niterruption occurs and if a switch-to-local or
 535 *  ETR-sync-check interrupt request is pending but disabled, this pending
 536 *  disabled interruption request is indicated and is cleared".
 537 * Which means that we can get etr_switch_to_local events from the machine
 538 * check handler although the interruption condition is disabled. Lovely..
 539 */
 540
 541/*
 542 * Switch to local machine check. This is called when the last usable
 543 * ETR port goes inactive. After switch to local the clock is not in sync.
 544 */
 545void etr_switch_to_local(void)
 546{
 547        if (!etr_eacr.sl)
 548                return;
 549        disable_sync_clock(NULL);
 550        if (!test_and_set_bit(ETR_EVENT_SWITCH_LOCAL, &etr_events)) {
 551                etr_eacr.es = etr_eacr.sl = 0;
 552                etr_setr(&etr_eacr);
 553                queue_work(time_sync_wq, &etr_work);
 554        }
 555}
 556
 557/*
 558 * ETR sync check machine check. This is called when the ETR OTE and the
 559 * local clock OTE are farther apart than the ETR sync check tolerance.
 560 * After a ETR sync check the clock is not in sync. The machine check
 561 * is broadcasted to all cpus at the same time.
 562 */
 563void etr_sync_check(void)
 564{
 565        if (!etr_eacr.es)
 566                return;
 567        disable_sync_clock(NULL);
 568        if (!test_and_set_bit(ETR_EVENT_SYNC_CHECK, &etr_events)) {
 569                etr_eacr.es = 0;
 570                etr_setr(&etr_eacr);
 571                queue_work(time_sync_wq, &etr_work);
 572        }
 573}
 574
 575/*
 576 * ETR timing alert. There are two causes:
 577 * 1) port state change, check the usability of the port
 578 * 2) port alert, one of the ETR-data-validity bits (v1-v2 bits of the
 579 *    sldr-status word) or ETR-data word 1 (edf1) or ETR-data word 3 (edf3)
 580 *    or ETR-data word 4 (edf4) has changed.
 581 */
 582static void etr_timing_alert(struct etr_irq_parm *intparm)
 583{
 584        if (intparm->pc0)
 585                /* ETR port 0 state change. */
 586                set_bit(ETR_EVENT_PORT0_CHANGE, &etr_events);
 587        if (intparm->pc1)
 588                /* ETR port 1 state change. */
 589                set_bit(ETR_EVENT_PORT1_CHANGE, &etr_events);
 590        if (intparm->eai)
 591                /*
 592                 * ETR port alert on either port 0, 1 or both.
 593                 * Both ports are not up-to-date now.
 594                 */
 595                set_bit(ETR_EVENT_PORT_ALERT, &etr_events);
 596        queue_work(time_sync_wq, &etr_work);
 597}
 598
 599static void etr_timeout(unsigned long dummy)
 600{
 601        set_bit(ETR_EVENT_UPDATE, &etr_events);
 602        queue_work(time_sync_wq, &etr_work);
 603}
 604
 605/*
 606 * Check if the etr mode is pss.
 607 */
 608static inline int etr_mode_is_pps(struct etr_eacr eacr)
 609{
 610        return eacr.es && !eacr.sl;
 611}
 612
 613/*
 614 * Check if the etr mode is etr.
 615 */
 616static inline int etr_mode_is_etr(struct etr_eacr eacr)
 617{
 618        return eacr.es && eacr.sl;
 619}
 620
 621/*
 622 * Check if the port can be used for TOD synchronization.
 623 * For PPS mode the port has to receive OTEs. For ETR mode
 624 * the port has to receive OTEs, the ETR stepping bit has to
 625 * be zero and the validity bits for data frame 1, 2, and 3
 626 * have to be 1.
 627 */
 628static int etr_port_valid(struct etr_aib *aib, int port)
 629{
 630        unsigned int psc;
 631
 632        /* Check that this port is receiving OTEs. */
 633        if (aib->tsp == 0)
 634                return 0;
 635
 636        psc = port ? aib->esw.psc1 : aib->esw.psc0;
 637        if (psc == etr_lpsc_pps_mode)
 638                return 1;
 639        if (psc == etr_lpsc_operational_step)
 640                return !aib->esw.y && aib->slsw.v1 &&
 641                        aib->slsw.v2 && aib->slsw.v3;
 642        return 0;
 643}
 644
 645/*
 646 * Check if two ports are on the same network.
 647 */
 648static int etr_compare_network(struct etr_aib *aib1, struct etr_aib *aib2)
 649{
 650        // FIXME: any other fields we have to compare?
 651        return aib1->edf1.net_id == aib2->edf1.net_id;
 652}
 653
 654/*
 655 * Wrapper for etr_stei that converts physical port states
 656 * to logical port states to be consistent with the output
 657 * of stetr (see etr_psc vs. etr_lpsc).
 658 */
 659static void etr_steai_cv(struct etr_aib *aib, unsigned int func)
 660{
 661        BUG_ON(etr_steai(aib, func) != 0);
 662        /* Convert port state to logical port state. */
 663        if (aib->esw.psc0 == 1)
 664                aib->esw.psc0 = 2;
 665        else if (aib->esw.psc0 == 0 && aib->esw.p == 0)
 666                aib->esw.psc0 = 1;
 667        if (aib->esw.psc1 == 1)
 668                aib->esw.psc1 = 2;
 669        else if (aib->esw.psc1 == 0 && aib->esw.p == 1)
 670                aib->esw.psc1 = 1;
 671}
 672
 673/*
 674 * Check if the aib a2 is still connected to the same attachment as
 675 * aib a1, the etv values differ by one and a2 is valid.
 676 */
 677static int etr_aib_follows(struct etr_aib *a1, struct etr_aib *a2, int p)
 678{
 679        int state_a1, state_a2;
 680
 681        /* Paranoia check: e0/e1 should better be the same. */
 682        if (a1->esw.eacr.e0 != a2->esw.eacr.e0 ||
 683            a1->esw.eacr.e1 != a2->esw.eacr.e1)
 684                return 0;
 685
 686        /* Still connected to the same etr ? */
 687        state_a1 = p ? a1->esw.psc1 : a1->esw.psc0;
 688        state_a2 = p ? a2->esw.psc1 : a2->esw.psc0;
 689        if (state_a1 == etr_lpsc_operational_step) {
 690                if (state_a2 != etr_lpsc_operational_step ||
 691                    a1->edf1.net_id != a2->edf1.net_id ||
 692                    a1->edf1.etr_id != a2->edf1.etr_id ||
 693                    a1->edf1.etr_pn != a2->edf1.etr_pn)
 694                        return 0;
 695        } else if (state_a2 != etr_lpsc_pps_mode)
 696                return 0;
 697
 698        /* The ETV value of a2 needs to be ETV of a1 + 1. */
 699        if (a1->edf2.etv + 1 != a2->edf2.etv)
 700                return 0;
 701
 702        if (!etr_port_valid(a2, p))
 703                return 0;
 704
 705        return 1;
 706}
 707
 708struct clock_sync_data {
 709        atomic_t cpus;
 710        int in_sync;
 711        unsigned long long fixup_cc;
 712        int etr_port;
 713        struct etr_aib *etr_aib;
 714};
 715
 716static void clock_sync_cpu(struct clock_sync_data *sync)
 717{
 718        atomic_dec(&sync->cpus);
 719        enable_sync_clock();
 720        /*
 721         * This looks like a busy wait loop but it isn't. etr_sync_cpus
 722         * is called on all other cpus while the TOD clocks is stopped.
 723         * __udelay will stop the cpu on an enabled wait psw until the
 724         * TOD is running again.
 725         */
 726        while (sync->in_sync == 0) {
 727                __udelay(1);
 728                /*
 729                 * A different cpu changes *in_sync. Therefore use
 730                 * barrier() to force memory access.
 731                 */
 732                barrier();
 733        }
 734        if (sync->in_sync != 1)
 735                /* Didn't work. Clear per-cpu in sync bit again. */
 736                disable_sync_clock(NULL);
 737        /*
 738         * This round of TOD syncing is done. Set the clock comparator
 739         * to the next tick and let the processor continue.
 740         */
 741        fixup_clock_comparator(sync->fixup_cc);
 742}
 743
 744/*
 745 * Sync the TOD clock using the port referred to by aibp. This port
 746 * has to be enabled and the other port has to be disabled. The
 747 * last eacr update has to be more than 1.6 seconds in the past.
 748 */
 749static int etr_sync_clock(void *data)
 750{
 751        static int first;
 752        unsigned long long clock, old_clock, clock_delta, delay, delta;
 753        struct clock_sync_data *etr_sync;
 754        struct etr_aib *sync_port, *aib;
 755        int port;
 756        int rc;
 757
 758        etr_sync = data;
 759
 760        if (xchg(&first, 1) == 1) {
 761                /* Slave */
 762                clock_sync_cpu(etr_sync);
 763                return 0;
 764        }
 765
 766        /* Wait until all other cpus entered the sync function. */
 767        while (atomic_read(&etr_sync->cpus) != 0)
 768                cpu_relax();
 769
 770        port = etr_sync->etr_port;
 771        aib = etr_sync->etr_aib;
 772        sync_port = (port == 0) ? &etr_port0 : &etr_port1;
 773        enable_sync_clock();
 774
 775        /* Set clock to next OTE. */
 776        __ctl_set_bit(14, 21);
 777        __ctl_set_bit(0, 29);
 778        clock = ((unsigned long long) (aib->edf2.etv + 1)) << 32;
 779        old_clock = get_tod_clock();
 780        if (set_tod_clock(clock) == 0) {
 781                __udelay(1);    /* Wait for the clock to start. */
 782                __ctl_clear_bit(0, 29);
 783                __ctl_clear_bit(14, 21);
 784                etr_stetr(aib);
 785                /* Adjust Linux timing variables. */
 786                delay = (unsigned long long)
 787                        (aib->edf2.etv - sync_port->edf2.etv) << 32;
 788                delta = adjust_time(old_clock, clock, delay);
 789                clock_delta = clock - old_clock;
 790                atomic_notifier_call_chain(&s390_epoch_delta_notifier, 0,
 791                                           &clock_delta);
 792                etr_sync->fixup_cc = delta;
 793                fixup_clock_comparator(delta);
 794                /* Verify that the clock is properly set. */
 795                if (!etr_aib_follows(sync_port, aib, port)) {
 796                        /* Didn't work. */
 797                        disable_sync_clock(NULL);
 798                        etr_sync->in_sync = -EAGAIN;
 799                        rc = -EAGAIN;
 800                } else {
 801                        etr_sync->in_sync = 1;
 802                        rc = 0;
 803                }
 804        } else {
 805                /* Could not set the clock ?!? */
 806                __ctl_clear_bit(0, 29);
 807                __ctl_clear_bit(14, 21);
 808                disable_sync_clock(NULL);
 809                etr_sync->in_sync = -EAGAIN;
 810                rc = -EAGAIN;
 811        }
 812        xchg(&first, 0);
 813        return rc;
 814}
 815
 816static int etr_sync_clock_stop(struct etr_aib *aib, int port)
 817{
 818        struct clock_sync_data etr_sync;
 819        struct etr_aib *sync_port;
 820        int follows;
 821        int rc;
 822
 823        /* Check if the current aib is adjacent to the sync port aib. */
 824        sync_port = (port == 0) ? &etr_port0 : &etr_port1;
 825        follows = etr_aib_follows(sync_port, aib, port);
 826        memcpy(sync_port, aib, sizeof(*aib));
 827        if (!follows)
 828                return -EAGAIN;
 829        memset(&etr_sync, 0, sizeof(etr_sync));
 830        etr_sync.etr_aib = aib;
 831        etr_sync.etr_port = port;
 832        get_online_cpus();
 833        atomic_set(&etr_sync.cpus, num_online_cpus() - 1);
 834        rc = stop_machine(etr_sync_clock, &etr_sync, cpu_online_mask);
 835        put_online_cpus();
 836        return rc;
 837}
 838
 839/*
 840 * Handle the immediate effects of the different events.
 841 * The port change event is used for online/offline changes.
 842 */
 843static struct etr_eacr etr_handle_events(struct etr_eacr eacr)
 844{
 845        if (test_and_clear_bit(ETR_EVENT_SYNC_CHECK, &etr_events))
 846                eacr.es = 0;
 847        if (test_and_clear_bit(ETR_EVENT_SWITCH_LOCAL, &etr_events))
 848                eacr.es = eacr.sl = 0;
 849        if (test_and_clear_bit(ETR_EVENT_PORT_ALERT, &etr_events))
 850                etr_port0_uptodate = etr_port1_uptodate = 0;
 851
 852        if (test_and_clear_bit(ETR_EVENT_PORT0_CHANGE, &etr_events)) {
 853                if (eacr.e0)
 854                        /*
 855                         * Port change of an enabled port. We have to
 856                         * assume that this can have caused an stepping
 857                         * port switch.
 858                         */
 859                        etr_tolec = get_tod_clock();
 860                eacr.p0 = etr_port0_online;
 861                if (!eacr.p0)
 862                        eacr.e0 = 0;
 863                etr_port0_uptodate = 0;
 864        }
 865        if (test_and_clear_bit(ETR_EVENT_PORT1_CHANGE, &etr_events)) {
 866                if (eacr.e1)
 867                        /*
 868                         * Port change of an enabled port. We have to
 869                         * assume that this can have caused an stepping
 870                         * port switch.
 871                         */
 872                        etr_tolec = get_tod_clock();
 873                eacr.p1 = etr_port1_online;
 874                if (!eacr.p1)
 875                        eacr.e1 = 0;
 876                etr_port1_uptodate = 0;
 877        }
 878        clear_bit(ETR_EVENT_UPDATE, &etr_events);
 879        return eacr;
 880}
 881
 882/*
 883 * Set up a timer that expires after the etr_tolec + 1.6 seconds if
 884 * one of the ports needs an update.
 885 */
 886static void etr_set_tolec_timeout(unsigned long long now)
 887{
 888        unsigned long micros;
 889
 890        if ((!etr_eacr.p0 || etr_port0_uptodate) &&
 891            (!etr_eacr.p1 || etr_port1_uptodate))
 892                return;
 893        micros = (now > etr_tolec) ? ((now - etr_tolec) >> 12) : 0;
 894        micros = (micros > 1600000) ? 0 : 1600000 - micros;
 895        mod_timer(&etr_timer, jiffies + (micros * HZ) / 1000000 + 1);
 896}
 897
 898/*
 899 * Set up a time that expires after 1/2 second.
 900 */
 901static void etr_set_sync_timeout(void)
 902{
 903        mod_timer(&etr_timer, jiffies + HZ/2);
 904}
 905
 906/*
 907 * Update the aib information for one or both ports.
 908 */
 909static struct etr_eacr etr_handle_update(struct etr_aib *aib,
 910                                         struct etr_eacr eacr)
 911{
 912        /* With both ports disabled the aib information is useless. */
 913        if (!eacr.e0 && !eacr.e1)
 914                return eacr;
 915
 916        /* Update port0 or port1 with aib stored in etr_work_fn. */
 917        if (aib->esw.q == 0) {
 918                /* Information for port 0 stored. */
 919                if (eacr.p0 && !etr_port0_uptodate) {
 920                        etr_port0 = *aib;
 921                        if (etr_port0_online)
 922                                etr_port0_uptodate = 1;
 923                }
 924        } else {
 925                /* Information for port 1 stored. */
 926                if (eacr.p1 && !etr_port1_uptodate) {
 927                        etr_port1 = *aib;
 928                        if (etr_port0_online)
 929                                etr_port1_uptodate = 1;
 930                }
 931        }
 932
 933        /*
 934         * Do not try to get the alternate port aib if the clock
 935         * is not in sync yet.
 936         */
 937        if (!eacr.es || !check_sync_clock())
 938                return eacr;
 939
 940        /*
 941         * If steai is available we can get the information about
 942         * the other port immediately. If only stetr is available the
 943         * data-port bit toggle has to be used.
 944         */
 945        if (etr_steai_available) {
 946                if (eacr.p0 && !etr_port0_uptodate) {
 947                        etr_steai_cv(&etr_port0, ETR_STEAI_PORT_0);
 948                        etr_port0_uptodate = 1;
 949                }
 950                if (eacr.p1 && !etr_port1_uptodate) {
 951                        etr_steai_cv(&etr_port1, ETR_STEAI_PORT_1);
 952                        etr_port1_uptodate = 1;
 953                }
 954        } else {
 955                /*
 956                 * One port was updated above, if the other
 957                 * port is not uptodate toggle dp bit.
 958                 */
 959                if ((eacr.p0 && !etr_port0_uptodate) ||
 960                    (eacr.p1 && !etr_port1_uptodate))
 961                        eacr.dp ^= 1;
 962                else
 963                        eacr.dp = 0;
 964        }
 965        return eacr;
 966}
 967
 968/*
 969 * Write new etr control register if it differs from the current one.
 970 * Return 1 if etr_tolec has been updated as well.
 971 */
 972static void etr_update_eacr(struct etr_eacr eacr)
 973{
 974        int dp_changed;
 975
 976        if (memcmp(&etr_eacr, &eacr, sizeof(eacr)) == 0)
 977                /* No change, return. */
 978                return;
 979        /*
 980         * The disable of an active port of the change of the data port
 981         * bit can/will cause a change in the data port.
 982         */
 983        dp_changed = etr_eacr.e0 > eacr.e0 || etr_eacr.e1 > eacr.e1 ||
 984                (etr_eacr.dp ^ eacr.dp) != 0;
 985        etr_eacr = eacr;
 986        etr_setr(&etr_eacr);
 987        if (dp_changed)
 988                etr_tolec = get_tod_clock();
 989}
 990
 991/*
 992 * ETR work. In this function you'll find the main logic. In
 993 * particular this is the only function that calls etr_update_eacr(),
 994 * it "controls" the etr control register.
 995 */
 996static void etr_work_fn(struct work_struct *work)
 997{
 998        unsigned long long now;
 999        struct etr_eacr eacr;
1000        struct etr_aib aib;
1001        int sync_port;
1002
1003        /* prevent multiple execution. */
1004        mutex_lock(&etr_work_mutex);
1005
1006        /* Create working copy of etr_eacr. */
1007        eacr = etr_eacr;
1008
1009        /* Check for the different events and their immediate effects. */
1010        eacr = etr_handle_events(eacr);
1011
1012        /* Check if ETR is supposed to be active. */
1013        eacr.ea = eacr.p0 || eacr.p1;
1014        if (!eacr.ea) {
1015                /* Both ports offline. Reset everything. */
1016                eacr.dp = eacr.es = eacr.sl = 0;
1017                on_each_cpu(disable_sync_clock, NULL, 1);
1018                del_timer_sync(&etr_timer);
1019                etr_update_eacr(eacr);
1020                goto out_unlock;
1021        }
1022
1023        /* Store aib to get the current ETR status word. */
1024        BUG_ON(etr_stetr(&aib) != 0);
1025        etr_port0.esw = etr_port1.esw = aib.esw;        /* Copy status word. */
1026        now = get_tod_clock();
1027
1028        /*
1029         * Update the port information if the last stepping port change
1030         * or data port change is older than 1.6 seconds.
1031         */
1032        if (now >= etr_tolec + (1600000 << 12))
1033                eacr = etr_handle_update(&aib, eacr);
1034
1035        /*
1036         * Select ports to enable. The preferred synchronization mode is PPS.
1037         * If a port can be enabled depends on a number of things:
1038         * 1) The port needs to be online and uptodate. A port is not
1039         *    disabled just because it is not uptodate, but it is only
1040         *    enabled if it is uptodate.
1041         * 2) The port needs to have the same mode (pps / etr).
1042         * 3) The port needs to be usable -> etr_port_valid() == 1
1043         * 4) To enable the second port the clock needs to be in sync.
1044         * 5) If both ports are useable and are ETR ports, the network id
1045         *    has to be the same.
1046         * The eacr.sl bit is used to indicate etr mode vs. pps mode.
1047         */
1048        if (eacr.p0 && aib.esw.psc0 == etr_lpsc_pps_mode) {
1049                eacr.sl = 0;
1050                eacr.e0 = 1;
1051                if (!etr_mode_is_pps(etr_eacr))
1052                        eacr.es = 0;
1053                if (!eacr.es || !eacr.p1 || aib.esw.psc1 != etr_lpsc_pps_mode)
1054                        eacr.e1 = 0;
1055                // FIXME: uptodate checks ?
1056                else if (etr_port0_uptodate && etr_port1_uptodate)
1057                        eacr.e1 = 1;
1058                sync_port = (etr_port0_uptodate &&
1059                             etr_port_valid(&etr_port0, 0)) ? 0 : -1;
1060        } else if (eacr.p1 && aib.esw.psc1 == etr_lpsc_pps_mode) {
1061                eacr.sl = 0;
1062                eacr.e0 = 0;
1063                eacr.e1 = 1;
1064                if (!etr_mode_is_pps(etr_eacr))
1065                        eacr.es = 0;
1066                sync_port = (etr_port1_uptodate &&
1067                             etr_port_valid(&etr_port1, 1)) ? 1 : -1;
1068        } else if (eacr.p0 && aib.esw.psc0 == etr_lpsc_operational_step) {
1069                eacr.sl = 1;
1070                eacr.e0 = 1;
1071                if (!etr_mode_is_etr(etr_eacr))
1072                        eacr.es = 0;
1073                if (!eacr.es || !eacr.p1 ||
1074                    aib.esw.psc1 != etr_lpsc_operational_alt)
1075                        eacr.e1 = 0;
1076                else if (etr_port0_uptodate && etr_port1_uptodate &&
1077                         etr_compare_network(&etr_port0, &etr_port1))
1078                        eacr.e1 = 1;
1079                sync_port = (etr_port0_uptodate &&
1080                             etr_port_valid(&etr_port0, 0)) ? 0 : -1;
1081        } else if (eacr.p1 && aib.esw.psc1 == etr_lpsc_operational_step) {
1082                eacr.sl = 1;
1083                eacr.e0 = 0;
1084                eacr.e1 = 1;
1085                if (!etr_mode_is_etr(etr_eacr))
1086                        eacr.es = 0;
1087                sync_port = (etr_port1_uptodate &&
1088                             etr_port_valid(&etr_port1, 1)) ? 1 : -1;
1089        } else {
1090                /* Both ports not usable. */
1091                eacr.es = eacr.sl = 0;
1092                sync_port = -1;
1093        }
1094
1095        /*
1096         * If the clock is in sync just update the eacr and return.
1097         * If there is no valid sync port wait for a port update.
1098         */
1099        if ((eacr.es && check_sync_clock()) || sync_port < 0) {
1100                etr_update_eacr(eacr);
1101                etr_set_tolec_timeout(now);
1102                goto out_unlock;
1103        }
1104
1105        /*
1106         * Prepare control register for clock syncing
1107         * (reset data port bit, set sync check control.
1108         */
1109        eacr.dp = 0;
1110        eacr.es = 1;
1111
1112        /*
1113         * Update eacr and try to synchronize the clock. If the update
1114         * of eacr caused a stepping port switch (or if we have to
1115         * assume that a stepping port switch has occurred) or the
1116         * clock syncing failed, reset the sync check control bit
1117         * and set up a timer to try again after 0.5 seconds
1118         */
1119        etr_update_eacr(eacr);
1120        if (now < etr_tolec + (1600000 << 12) ||
1121            etr_sync_clock_stop(&aib, sync_port) != 0) {
1122                /* Sync failed. Try again in 1/2 second. */
1123                eacr.es = 0;
1124                etr_update_eacr(eacr);
1125                etr_set_sync_timeout();
1126        } else
1127                etr_set_tolec_timeout(now);
1128out_unlock:
1129        mutex_unlock(&etr_work_mutex);
1130}
1131
1132/*
1133 * Sysfs interface functions
1134 */
1135static struct bus_type etr_subsys = {
1136        .name           = "etr",
1137        .dev_name       = "etr",
1138};
1139
1140static struct device etr_port0_dev = {
1141        .id     = 0,
1142        .bus    = &etr_subsys,
1143};
1144
1145static struct device etr_port1_dev = {
1146        .id     = 1,
1147        .bus    = &etr_subsys,
1148};
1149
1150/*
1151 * ETR subsys attributes
1152 */
1153static ssize_t etr_stepping_port_show(struct device *dev,
1154                                        struct device_attribute *attr,
1155                                        char *buf)
1156{
1157        return sprintf(buf, "%i\n", etr_port0.esw.p);
1158}
1159
1160static DEVICE_ATTR(stepping_port, 0400, etr_stepping_port_show, NULL);
1161
1162static ssize_t etr_stepping_mode_show(struct device *dev,
1163                                        struct device_attribute *attr,
1164                                        char *buf)
1165{
1166        char *mode_str;
1167
1168        if (etr_mode_is_pps(etr_eacr))
1169                mode_str = "pps";
1170        else if (etr_mode_is_etr(etr_eacr))
1171                mode_str = "etr";
1172        else
1173                mode_str = "local";
1174        return sprintf(buf, "%s\n", mode_str);
1175}
1176
1177static DEVICE_ATTR(stepping_mode, 0400, etr_stepping_mode_show, NULL);
1178
1179/*
1180 * ETR port attributes
1181 */
1182static inline struct etr_aib *etr_aib_from_dev(struct device *dev)
1183{
1184        if (dev == &etr_port0_dev)
1185                return etr_port0_online ? &etr_port0 : NULL;
1186        else
1187                return etr_port1_online ? &etr_port1 : NULL;
1188}
1189
1190static ssize_t etr_online_show(struct device *dev,
1191                                struct device_attribute *attr,
1192                                char *buf)
1193{
1194        unsigned int online;
1195
1196        online = (dev == &etr_port0_dev) ? etr_port0_online : etr_port1_online;
1197        return sprintf(buf, "%i\n", online);
1198}
1199
1200static ssize_t etr_online_store(struct device *dev,
1201                                struct device_attribute *attr,
1202                                const char *buf, size_t count)
1203{
1204        unsigned int value;
1205
1206        value = simple_strtoul(buf, NULL, 0);
1207        if (value != 0 && value != 1)
1208                return -EINVAL;
1209        if (!test_bit(CLOCK_SYNC_HAS_ETR, &clock_sync_flags))
1210                return -EOPNOTSUPP;
1211        mutex_lock(&clock_sync_mutex);
1212        if (dev == &etr_port0_dev) {
1213                if (etr_port0_online == value)
1214                        goto out;       /* Nothing to do. */
1215                etr_port0_online = value;
1216                if (etr_port0_online && etr_port1_online)
1217                        set_bit(CLOCK_SYNC_ETR, &clock_sync_flags);
1218                else
1219                        clear_bit(CLOCK_SYNC_ETR, &clock_sync_flags);
1220                set_bit(ETR_EVENT_PORT0_CHANGE, &etr_events);
1221                queue_work(time_sync_wq, &etr_work);
1222        } else {
1223                if (etr_port1_online == value)
1224                        goto out;       /* Nothing to do. */
1225                etr_port1_online = value;
1226                if (etr_port0_online && etr_port1_online)
1227                        set_bit(CLOCK_SYNC_ETR, &clock_sync_flags);
1228                else
1229                        clear_bit(CLOCK_SYNC_ETR, &clock_sync_flags);
1230                set_bit(ETR_EVENT_PORT1_CHANGE, &etr_events);
1231                queue_work(time_sync_wq, &etr_work);
1232        }
1233out:
1234        mutex_unlock(&clock_sync_mutex);
1235        return count;
1236}
1237
1238static DEVICE_ATTR(online, 0600, etr_online_show, etr_online_store);
1239
1240static ssize_t etr_stepping_control_show(struct device *dev,
1241                                        struct device_attribute *attr,
1242                                        char *buf)
1243{
1244        return sprintf(buf, "%i\n", (dev == &etr_port0_dev) ?
1245                       etr_eacr.e0 : etr_eacr.e1);
1246}
1247
1248static DEVICE_ATTR(stepping_control, 0400, etr_stepping_control_show, NULL);
1249
1250static ssize_t etr_mode_code_show(struct device *dev,
1251                                struct device_attribute *attr, char *buf)
1252{
1253        if (!etr_port0_online && !etr_port1_online)
1254                /* Status word is not uptodate if both ports are offline. */
1255                return -ENODATA;
1256        return sprintf(buf, "%i\n", (dev == &etr_port0_dev) ?
1257                       etr_port0.esw.psc0 : etr_port0.esw.psc1);
1258}
1259
1260static DEVICE_ATTR(state_code, 0400, etr_mode_code_show, NULL);
1261
1262static ssize_t etr_untuned_show(struct device *dev,
1263                                struct device_attribute *attr, char *buf)
1264{
1265        struct etr_aib *aib = etr_aib_from_dev(dev);
1266
1267        if (!aib || !aib->slsw.v1)
1268                return -ENODATA;
1269        return sprintf(buf, "%i\n", aib->edf1.u);
1270}
1271
1272static DEVICE_ATTR(untuned, 0400, etr_untuned_show, NULL);
1273
1274static ssize_t etr_network_id_show(struct device *dev,
1275                                struct device_attribute *attr, char *buf)
1276{
1277        struct etr_aib *aib = etr_aib_from_dev(dev);
1278
1279        if (!aib || !aib->slsw.v1)
1280                return -ENODATA;
1281        return sprintf(buf, "%i\n", aib->edf1.net_id);
1282}
1283
1284static DEVICE_ATTR(network, 0400, etr_network_id_show, NULL);
1285
1286static ssize_t etr_id_show(struct device *dev,
1287                        struct device_attribute *attr, char *buf)
1288{
1289        struct etr_aib *aib = etr_aib_from_dev(dev);
1290
1291        if (!aib || !aib->slsw.v1)
1292                return -ENODATA;
1293        return sprintf(buf, "%i\n", aib->edf1.etr_id);
1294}
1295
1296static DEVICE_ATTR(id, 0400, etr_id_show, NULL);
1297
1298static ssize_t etr_port_number_show(struct device *dev,
1299                        struct device_attribute *attr, char *buf)
1300{
1301        struct etr_aib *aib = etr_aib_from_dev(dev);
1302
1303        if (!aib || !aib->slsw.v1)
1304                return -ENODATA;
1305        return sprintf(buf, "%i\n", aib->edf1.etr_pn);
1306}
1307
1308static DEVICE_ATTR(port, 0400, etr_port_number_show, NULL);
1309
1310static ssize_t etr_coupled_show(struct device *dev,
1311                        struct device_attribute *attr, char *buf)
1312{
1313        struct etr_aib *aib = etr_aib_from_dev(dev);
1314
1315        if (!aib || !aib->slsw.v3)
1316                return -ENODATA;
1317        return sprintf(buf, "%i\n", aib->edf3.c);
1318}
1319
1320static DEVICE_ATTR(coupled, 0400, etr_coupled_show, NULL);
1321
1322static ssize_t etr_local_time_show(struct device *dev,
1323                        struct device_attribute *attr, char *buf)
1324{
1325        struct etr_aib *aib = etr_aib_from_dev(dev);
1326
1327        if (!aib || !aib->slsw.v3)
1328                return -ENODATA;
1329        return sprintf(buf, "%i\n", aib->edf3.blto);
1330}
1331
1332static DEVICE_ATTR(local_time, 0400, etr_local_time_show, NULL);
1333
1334static ssize_t etr_utc_offset_show(struct device *dev,
1335                        struct device_attribute *attr, char *buf)
1336{
1337        struct etr_aib *aib = etr_aib_from_dev(dev);
1338
1339        if (!aib || !aib->slsw.v3)
1340                return -ENODATA;
1341        return sprintf(buf, "%i\n", aib->edf3.buo);
1342}
1343
1344static DEVICE_ATTR(utc_offset, 0400, etr_utc_offset_show, NULL);
1345
1346static struct device_attribute *etr_port_attributes[] = {
1347        &dev_attr_online,
1348        &dev_attr_stepping_control,
1349        &dev_attr_state_code,
1350        &dev_attr_untuned,
1351        &dev_attr_network,
1352        &dev_attr_id,
1353        &dev_attr_port,
1354        &dev_attr_coupled,
1355        &dev_attr_local_time,
1356        &dev_attr_utc_offset,
1357        NULL
1358};
1359
1360static int __init etr_register_port(struct device *dev)
1361{
1362        struct device_attribute **attr;
1363        int rc;
1364
1365        rc = device_register(dev);
1366        if (rc)
1367                goto out;
1368        for (attr = etr_port_attributes; *attr; attr++) {
1369                rc = device_create_file(dev, *attr);
1370                if (rc)
1371                        goto out_unreg;
1372        }
1373        return 0;
1374out_unreg:
1375        for (; attr >= etr_port_attributes; attr--)
1376                device_remove_file(dev, *attr);
1377        device_unregister(dev);
1378out:
1379        return rc;
1380}
1381
1382static void __init etr_unregister_port(struct device *dev)
1383{
1384        struct device_attribute **attr;
1385
1386        for (attr = etr_port_attributes; *attr; attr++)
1387                device_remove_file(dev, *attr);
1388        device_unregister(dev);
1389}
1390
1391static int __init etr_init_sysfs(void)
1392{
1393        int rc;
1394
1395        rc = subsys_system_register(&etr_subsys, NULL);
1396        if (rc)
1397                goto out;
1398        rc = device_create_file(etr_subsys.dev_root, &dev_attr_stepping_port);
1399        if (rc)
1400                goto out_unreg_subsys;
1401        rc = device_create_file(etr_subsys.dev_root, &dev_attr_stepping_mode);
1402        if (rc)
1403                goto out_remove_stepping_port;
1404        rc = etr_register_port(&etr_port0_dev);
1405        if (rc)
1406                goto out_remove_stepping_mode;
1407        rc = etr_register_port(&etr_port1_dev);
1408        if (rc)
1409                goto out_remove_port0;
1410        return 0;
1411
1412out_remove_port0:
1413        etr_unregister_port(&etr_port0_dev);
1414out_remove_stepping_mode:
1415        device_remove_file(etr_subsys.dev_root, &dev_attr_stepping_mode);
1416out_remove_stepping_port:
1417        device_remove_file(etr_subsys.dev_root, &dev_attr_stepping_port);
1418out_unreg_subsys:
1419        bus_unregister(&etr_subsys);
1420out:
1421        return rc;
1422}
1423
1424device_initcall(etr_init_sysfs);
1425
1426/*
1427 * Server Time Protocol (STP) code.
1428 */
1429static int stp_online;
1430static struct stp_sstpi stp_info;
1431static void *stp_page;
1432
1433static void stp_work_fn(struct work_struct *work);
1434static DEFINE_MUTEX(stp_work_mutex);
1435static DECLARE_WORK(stp_work, stp_work_fn);
1436static struct timer_list stp_timer;
1437
1438static int __init early_parse_stp(char *p)
1439{
1440        if (strncmp(p, "off", 3) == 0)
1441                stp_online = 0;
1442        else if (strncmp(p, "on", 2) == 0)
1443                stp_online = 1;
1444        return 0;
1445}
1446early_param("stp", early_parse_stp);
1447
1448/*
1449 * Reset STP attachment.
1450 */
1451static void __init stp_reset(void)
1452{
1453        int rc;
1454
1455        stp_page = (void *) get_zeroed_page(GFP_ATOMIC);
1456        rc = chsc_sstpc(stp_page, STP_OP_CTRL, 0x0000);
1457        if (rc == 0)
1458                set_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags);
1459        else if (stp_online) {
1460                pr_warning("The real or virtual hardware system does "
1461                           "not provide an STP interface\n");
1462                free_page((unsigned long) stp_page);
1463                stp_page = NULL;
1464                stp_online = 0;
1465        }
1466}
1467
1468static void stp_timeout(unsigned long dummy)
1469{
1470        queue_work(time_sync_wq, &stp_work);
1471}
1472
1473static int __init stp_init(void)
1474{
1475        if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
1476                return 0;
1477        setup_timer(&stp_timer, stp_timeout, 0UL);
1478        time_init_wq();
1479        if (!stp_online)
1480                return 0;
1481        queue_work(time_sync_wq, &stp_work);
1482        return 0;
1483}
1484
1485arch_initcall(stp_init);
1486
1487/*
1488 * STP timing alert. There are three causes:
1489 * 1) timing status change
1490 * 2) link availability change
1491 * 3) time control parameter change
1492 * In all three cases we are only interested in the clock source state.
1493 * If a STP clock source is now available use it.
1494 */
1495static void stp_timing_alert(struct stp_irq_parm *intparm)
1496{
1497        if (intparm->tsc || intparm->lac || intparm->tcpc)
1498                queue_work(time_sync_wq, &stp_work);
1499}
1500
1501/*
1502 * STP sync check machine check. This is called when the timing state
1503 * changes from the synchronized state to the unsynchronized state.
1504 * After a STP sync check the clock is not in sync. The machine check
1505 * is broadcasted to all cpus at the same time.
1506 */
1507void stp_sync_check(void)
1508{
1509        disable_sync_clock(NULL);
1510        queue_work(time_sync_wq, &stp_work);
1511}
1512
1513/*
1514 * STP island condition machine check. This is called when an attached
1515 * server  attempts to communicate over an STP link and the servers
1516 * have matching CTN ids and have a valid stratum-1 configuration
1517 * but the configurations do not match.
1518 */
1519void stp_island_check(void)
1520{
1521        disable_sync_clock(NULL);
1522        queue_work(time_sync_wq, &stp_work);
1523}
1524
1525
1526static int stp_sync_clock(void *data)
1527{
1528        static int first;
1529        unsigned long long old_clock, delta, new_clock, clock_delta;
1530        struct clock_sync_data *stp_sync;
1531        int rc;
1532
1533        stp_sync = data;
1534
1535        if (xchg(&first, 1) == 1) {
1536                /* Slave */
1537                clock_sync_cpu(stp_sync);
1538                return 0;
1539        }
1540
1541        /* Wait until all other cpus entered the sync function. */
1542        while (atomic_read(&stp_sync->cpus) != 0)
1543                cpu_relax();
1544
1545        enable_sync_clock();
1546
1547        rc = 0;
1548        if (stp_info.todoff[0] || stp_info.todoff[1] ||
1549            stp_info.todoff[2] || stp_info.todoff[3] ||
1550            stp_info.tmd != 2) {
1551                old_clock = get_tod_clock();
1552                rc = chsc_sstpc(stp_page, STP_OP_SYNC, 0);
1553                if (rc == 0) {
1554                        new_clock = get_tod_clock();
1555                        delta = adjust_time(old_clock, new_clock, 0);
1556                        clock_delta = new_clock - old_clock;
1557                        atomic_notifier_call_chain(&s390_epoch_delta_notifier,
1558                                                   0, &clock_delta);
1559                        fixup_clock_comparator(delta);
1560                        rc = chsc_sstpi(stp_page, &stp_info,
1561                                        sizeof(struct stp_sstpi));
1562                        if (rc == 0 && stp_info.tmd != 2)
1563                                rc = -EAGAIN;
1564                }
1565        }
1566        if (rc) {
1567                disable_sync_clock(NULL);
1568                stp_sync->in_sync = -EAGAIN;
1569        } else
1570                stp_sync->in_sync = 1;
1571        xchg(&first, 0);
1572        return 0;
1573}
1574
1575/*
1576 * STP work. Check for the STP state and take over the clock
1577 * synchronization if the STP clock source is usable.
1578 */
1579static void stp_work_fn(struct work_struct *work)
1580{
1581        struct clock_sync_data stp_sync;
1582        int rc;
1583
1584        /* prevent multiple execution. */
1585        mutex_lock(&stp_work_mutex);
1586
1587        if (!stp_online) {
1588                chsc_sstpc(stp_page, STP_OP_CTRL, 0x0000);
1589                del_timer_sync(&stp_timer);
1590                goto out_unlock;
1591        }
1592
1593        rc = chsc_sstpc(stp_page, STP_OP_CTRL, 0xb0e0);
1594        if (rc)
1595                goto out_unlock;
1596
1597        rc = chsc_sstpi(stp_page, &stp_info, sizeof(struct stp_sstpi));
1598        if (rc || stp_info.c == 0)
1599                goto out_unlock;
1600
1601        /* Skip synchronization if the clock is already in sync. */
1602        if (check_sync_clock())
1603                goto out_unlock;
1604
1605        memset(&stp_sync, 0, sizeof(stp_sync));
1606        get_online_cpus();
1607        atomic_set(&stp_sync.cpus, num_online_cpus() - 1);
1608        stop_machine(stp_sync_clock, &stp_sync, cpu_online_mask);
1609        put_online_cpus();
1610
1611        if (!check_sync_clock())
1612                /*
1613                 * There is a usable clock but the synchonization failed.
1614                 * Retry after a second.
1615                 */
1616                mod_timer(&stp_timer, jiffies + HZ);
1617
1618out_unlock:
1619        mutex_unlock(&stp_work_mutex);
1620}
1621
1622/*
1623 * STP subsys sysfs interface functions
1624 */
1625static struct bus_type stp_subsys = {
1626        .name           = "stp",
1627        .dev_name       = "stp",
1628};
1629
1630static ssize_t stp_ctn_id_show(struct device *dev,
1631                                struct device_attribute *attr,
1632                                char *buf)
1633{
1634        if (!stp_online)
1635                return -ENODATA;
1636        return sprintf(buf, "%016llx\n",
1637                       *(unsigned long long *) stp_info.ctnid);
1638}
1639
1640static DEVICE_ATTR(ctn_id, 0400, stp_ctn_id_show, NULL);
1641
1642static ssize_t stp_ctn_type_show(struct device *dev,
1643                                struct device_attribute *attr,
1644                                char *buf)
1645{
1646        if (!stp_online)
1647                return -ENODATA;
1648        return sprintf(buf, "%i\n", stp_info.ctn);
1649}
1650
1651static DEVICE_ATTR(ctn_type, 0400, stp_ctn_type_show, NULL);
1652
1653static ssize_t stp_dst_offset_show(struct device *dev,
1654                                   struct device_attribute *attr,
1655                                   char *buf)
1656{
1657        if (!stp_online || !(stp_info.vbits & 0x2000))
1658                return -ENODATA;
1659        return sprintf(buf, "%i\n", (int)(s16) stp_info.dsto);
1660}
1661
1662static DEVICE_ATTR(dst_offset, 0400, stp_dst_offset_show, NULL);
1663
1664static ssize_t stp_leap_seconds_show(struct device *dev,
1665                                        struct device_attribute *attr,
1666                                        char *buf)
1667{
1668        if (!stp_online || !(stp_info.vbits & 0x8000))
1669                return -ENODATA;
1670        return sprintf(buf, "%i\n", (int)(s16) stp_info.leaps);
1671}
1672
1673static DEVICE_ATTR(leap_seconds, 0400, stp_leap_seconds_show, NULL);
1674
1675static ssize_t stp_stratum_show(struct device *dev,
1676                                struct device_attribute *attr,
1677                                char *buf)
1678{
1679        if (!stp_online)
1680                return -ENODATA;
1681        return sprintf(buf, "%i\n", (int)(s16) stp_info.stratum);
1682}
1683
1684static DEVICE_ATTR(stratum, 0400, stp_stratum_show, NULL);
1685
1686static ssize_t stp_time_offset_show(struct device *dev,
1687                                struct device_attribute *attr,
1688                                char *buf)
1689{
1690        if (!stp_online || !(stp_info.vbits & 0x0800))
1691                return -ENODATA;
1692        return sprintf(buf, "%i\n", (int) stp_info.tto);
1693}
1694
1695static DEVICE_ATTR(time_offset, 0400, stp_time_offset_show, NULL);
1696
1697static ssize_t stp_time_zone_offset_show(struct device *dev,
1698                                struct device_attribute *attr,
1699                                char *buf)
1700{
1701        if (!stp_online || !(stp_info.vbits & 0x4000))
1702                return -ENODATA;
1703        return sprintf(buf, "%i\n", (int)(s16) stp_info.tzo);
1704}
1705
1706static DEVICE_ATTR(time_zone_offset, 0400,
1707                         stp_time_zone_offset_show, NULL);
1708
1709static ssize_t stp_timing_mode_show(struct device *dev,
1710                                struct device_attribute *attr,
1711                                char *buf)
1712{
1713        if (!stp_online)
1714                return -ENODATA;
1715        return sprintf(buf, "%i\n", stp_info.tmd);
1716}
1717
1718static DEVICE_ATTR(timing_mode, 0400, stp_timing_mode_show, NULL);
1719
1720static ssize_t stp_timing_state_show(struct device *dev,
1721                                struct device_attribute *attr,
1722                                char *buf)
1723{
1724        if (!stp_online)
1725                return -ENODATA;
1726        return sprintf(buf, "%i\n", stp_info.tst);
1727}
1728
1729static DEVICE_ATTR(timing_state, 0400, stp_timing_state_show, NULL);
1730
1731static ssize_t stp_online_show(struct device *dev,
1732                                struct device_attribute *attr,
1733                                char *buf)
1734{
1735        return sprintf(buf, "%i\n", stp_online);
1736}
1737
1738static ssize_t stp_online_store(struct device *dev,
1739                                struct device_attribute *attr,
1740                                const char *buf, size_t count)
1741{
1742        unsigned int value;
1743
1744        value = simple_strtoul(buf, NULL, 0);
1745        if (value != 0 && value != 1)
1746                return -EINVAL;
1747        if (!test_bit(CLOCK_SYNC_HAS_STP, &clock_sync_flags))
1748                return -EOPNOTSUPP;
1749        mutex_lock(&clock_sync_mutex);
1750        stp_online = value;
1751        if (stp_online)
1752                set_bit(CLOCK_SYNC_STP, &clock_sync_flags);
1753        else
1754                clear_bit(CLOCK_SYNC_STP, &clock_sync_flags);
1755        queue_work(time_sync_wq, &stp_work);
1756        mutex_unlock(&clock_sync_mutex);
1757        return count;
1758}
1759
1760/*
1761 * Can't use DEVICE_ATTR because the attribute should be named
1762 * stp/online but dev_attr_online already exists in this file ..
1763 */
1764static struct device_attribute dev_attr_stp_online = {
1765        .attr = { .name = "online", .mode = 0600 },
1766        .show   = stp_online_show,
1767        .store  = stp_online_store,
1768};
1769
1770static struct device_attribute *stp_attributes[] = {
1771        &dev_attr_ctn_id,
1772        &dev_attr_ctn_type,
1773        &dev_attr_dst_offset,
1774        &dev_attr_leap_seconds,
1775        &dev_attr_stp_online,
1776        &dev_attr_stratum,
1777        &dev_attr_time_offset,
1778        &dev_attr_time_zone_offset,
1779        &dev_attr_timing_mode,
1780        &dev_attr_timing_state,
1781        NULL
1782};
1783
1784static int __init stp_init_sysfs(void)
1785{
1786        struct device_attribute **attr;
1787        int rc;
1788
1789        rc = subsys_system_register(&stp_subsys, NULL);
1790        if (rc)
1791                goto out;
1792        for (attr = stp_attributes; *attr; attr++) {
1793                rc = device_create_file(stp_subsys.dev_root, *attr);
1794                if (rc)
1795                        goto out_unreg;
1796        }
1797        return 0;
1798out_unreg:
1799        for (; attr >= stp_attributes; attr--)
1800                device_remove_file(stp_subsys.dev_root, *attr);
1801        bus_unregister(&stp_subsys);
1802out:
1803        return rc;
1804}
1805
1806device_initcall(stp_init_sysfs);
1807