246 lines
5.8 KiB
C
246 lines
5.8 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* Count register synchronisation.
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*
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* Derived from arch/x86/kernel/tsc_sync.c
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* Copyright (C) 2006, Red Hat, Inc., Ingo Molnar
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*/
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#include <linux/kernel.h>
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#include <linux/irqflags.h>
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#include <linux/cpumask.h>
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#include <linux/atomic.h>
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#include <linux/nmi.h>
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#include <linux/smp.h>
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#include <linux/spinlock.h>
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#include <asm/r4k-timer.h>
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#include <asm/mipsregs.h>
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#include <asm/time.h>
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#define COUNTON 100
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#define NR_LOOPS 3
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#define LOOP_TIMEOUT 20
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/*
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* Entry/exit counters that make sure that both CPUs
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* run the measurement code at once:
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*/
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static atomic_t start_count;
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static atomic_t stop_count;
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static atomic_t test_runs;
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/*
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* We use a raw spinlock in this exceptional case, because
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* we want to have the fastest, inlined, non-debug version
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* of a critical section, to be able to prove counter time-warps:
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*/
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static arch_spinlock_t sync_lock = __ARCH_SPIN_LOCK_UNLOCKED;
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static uint32_t last_counter;
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static uint32_t max_warp;
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static int nr_warps;
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static int random_warps;
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/*
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* Counter warp measurement loop running on both CPUs.
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*/
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static uint32_t check_counter_warp(void)
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{
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uint32_t start, now, prev, end, cur_max_warp = 0;
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int i, cur_warps = 0;
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start = read_c0_count();
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end = start + (uint32_t) mips_hpt_frequency / 1000 * LOOP_TIMEOUT;
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for (i = 0; ; i++) {
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/*
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* We take the global lock, measure counter, save the
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* previous counter that was measured (possibly on
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* another CPU) and update the previous counter timestamp.
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*/
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arch_spin_lock(&sync_lock);
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prev = last_counter;
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now = read_c0_count();
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last_counter = now;
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arch_spin_unlock(&sync_lock);
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/*
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* Be nice every now and then (and also check whether
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* measurement is done [we also insert a 10 million
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* loops safety exit, so we dont lock up in case the
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* counter is totally broken]):
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*/
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if (unlikely(!(i & 7))) {
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if (now > end || i > 10000000)
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break;
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cpu_relax();
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touch_nmi_watchdog();
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}
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/*
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* Outside the critical section we can now see whether
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* we saw a time-warp of the counter going backwards:
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*/
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if (unlikely(prev > now)) {
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arch_spin_lock(&sync_lock);
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max_warp = max(max_warp, prev - now);
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cur_max_warp = max_warp;
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/*
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* Check whether this bounces back and forth. Only
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* one CPU should observe time going backwards.
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*/
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if (cur_warps != nr_warps)
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random_warps++;
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nr_warps++;
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cur_warps = nr_warps;
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arch_spin_unlock(&sync_lock);
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}
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}
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WARN(!(now-start),
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"Warning: zero counter calibration delta: %d [max: %d]\n",
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now-start, end-start);
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return cur_max_warp;
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}
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/*
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* The freshly booted CPU initiates this via an async SMP function call.
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*/
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static void check_counter_sync_source(void *__cpu)
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{
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unsigned int cpu = (unsigned long)__cpu;
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int cpus = 2;
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atomic_set(&test_runs, NR_LOOPS);
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retry:
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/* Wait for the target to start. */
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while (atomic_read(&start_count) != cpus - 1)
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cpu_relax();
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/*
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* Trigger the target to continue into the measurement too:
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*/
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atomic_inc(&start_count);
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check_counter_warp();
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while (atomic_read(&stop_count) != cpus-1)
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cpu_relax();
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/*
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* If the test was successful set the number of runs to zero and
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* stop. If not, decrement the number of runs an check if we can
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* retry. In case of random warps no retry is attempted.
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*/
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if (!nr_warps) {
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atomic_set(&test_runs, 0);
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pr_info("Counter synchronization [CPU#%d -> CPU#%u]: passed\n",
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smp_processor_id(), cpu);
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} else if (atomic_dec_and_test(&test_runs) || random_warps) {
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/* Force it to 0 if random warps brought us here */
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atomic_set(&test_runs, 0);
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pr_info("Counter synchronization [CPU#%d -> CPU#%u]:\n",
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smp_processor_id(), cpu);
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pr_info("Measured %d cycles counter warp between CPUs", max_warp);
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if (random_warps)
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pr_warn("Counter warped randomly between CPUs\n");
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}
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/*
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* Reset it - just in case we boot another CPU later:
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*/
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atomic_set(&start_count, 0);
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random_warps = 0;
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nr_warps = 0;
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max_warp = 0;
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last_counter = 0;
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/*
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* Let the target continue with the bootup:
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*/
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atomic_inc(&stop_count);
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/*
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* Retry, if there is a chance to do so.
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*/
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if (atomic_read(&test_runs) > 0)
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goto retry;
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}
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/*
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* Freshly booted CPUs call into this:
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*/
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void synchronise_count_slave(int cpu)
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{
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uint32_t cur_max_warp, gbl_max_warp, count;
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int cpus = 2;
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if (!cpu_has_counter || !mips_hpt_frequency)
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return;
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/* Kick the control CPU into the counter synchronization function */
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smp_call_function_single(cpumask_first(cpu_online_mask),
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check_counter_sync_source,
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(unsigned long *)(unsigned long)cpu, 0);
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retry:
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/*
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* Register this CPU's participation and wait for the
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* source CPU to start the measurement:
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*/
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atomic_inc(&start_count);
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while (atomic_read(&start_count) != cpus)
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cpu_relax();
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cur_max_warp = check_counter_warp();
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/*
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* Store the maximum observed warp value for a potential retry:
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*/
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gbl_max_warp = max_warp;
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/*
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* Ok, we are done:
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*/
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atomic_inc(&stop_count);
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/*
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* Wait for the source CPU to print stuff:
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*/
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while (atomic_read(&stop_count) != cpus)
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cpu_relax();
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/*
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* Reset it for the next sync test:
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*/
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atomic_set(&stop_count, 0);
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/*
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* Check the number of remaining test runs. If not zero, the test
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* failed and a retry with adjusted counter is possible. If zero the
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* test was either successful or failed terminally.
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*/
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if (!atomic_read(&test_runs)) {
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/* Arrange for an interrupt in a short while */
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write_c0_compare(read_c0_count() + COUNTON);
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return;
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}
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/*
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* If the warp value of this CPU is 0, then the other CPU
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* observed time going backwards so this counter was ahead and
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* needs to move backwards.
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*/
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if (!cur_max_warp)
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cur_max_warp = -gbl_max_warp;
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count = read_c0_count();
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count += cur_max_warp;
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write_c0_count(count);
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pr_debug("Counter compensate: CPU%u observed %d warp\n", cpu, cur_max_warp);
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goto retry;
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}
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