forked from Imagelibrary/rtems
285 lines
5.9 KiB
C
285 lines
5.9 KiB
C
/*
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* Copyright (c) 2014 embedded brains GmbH. All rights reserved.
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*
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* embedded brains GmbH
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* Dornierstr. 4
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* 82178 Puchheim
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* Germany
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* <rtems@embedded-brains.de>
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*
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* The license and distribution terms for this file may be
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* found in the file LICENSE in this distribution or at
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* http://www.rtems.org/license/LICENSE.
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*/
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#ifdef HAVE_CONFIG_H
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#include "config.h"
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#endif
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#include <rtems/counter.h>
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#include <rtems.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <inttypes.h>
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#include <alloca.h>
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#include "tmacros.h"
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#define FUNCTION_LEVELS 16
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#define SAMPLES 123
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#define CPU_COUNT 32
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const char rtems_test_name[] = "TMCONTEXT 1";
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static rtems_counter_ticks t[SAMPLES];
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static volatile bool always_true = true;
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static size_t cache_line_size;
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static size_t data_size;
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static volatile int *main_data;
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static Context_Control ctx;
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static int dirty_data_cache(volatile int *data, size_t n, size_t clsz, int j)
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{
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size_t m = n / sizeof(*data);
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size_t k = clsz / sizeof(*data);
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size_t i;
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for (i = 0; i < m; i += k) {
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data[i] = i + j;
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}
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return i + j;
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}
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static int prevent_opt_func(int m, int n)
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{
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if (m == 0) {
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return n + 1;
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} else if (m > 0 && n == 0) {
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return prevent_opt_func(m - 1, 1);
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} else {
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return prevent_opt_func(m - 1, prevent_opt_func(m, n - 1));
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}
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}
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static int call_at_level(int start, int fl, int s, bool dirty)
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{
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if (fl == start) {
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/*
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* Some architectures like the SPARC have register windows. A side-effect
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* of this context switch is that we start with a fresh window set. On
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* architectures like ARM or PowerPC this context switch has no effect.
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*/
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_Context_Switch(&ctx, &ctx);
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}
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if (fl > 0) {
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if (always_true) {
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return call_at_level(start, fl - 1, s, dirty);
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} else {
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return prevent_opt_func(fl - 1, fl - 2);
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}
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} else {
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char *volatile space;
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rtems_counter_ticks a;
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rtems_counter_ticks b;
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if (dirty) {
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dirty_data_cache(main_data, data_size, cache_line_size, fl);
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rtems_cache_invalidate_entire_instruction();
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}
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a = rtems_counter_read();
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/* Ensure that we use an untouched stack area */
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space = alloca(1024);
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(void) space;
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_Context_Switch(&ctx, &ctx);
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b = rtems_counter_read();
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t[s] = rtems_counter_difference(b, a);
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return 0;
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}
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}
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static void load_task(rtems_task_argument arg)
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{
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volatile int *load_data = (volatile int *) arg;
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size_t n = data_size;
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size_t clsz = cache_line_size;
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int j = (int) rtems_get_current_processor();
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while (true) {
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j = dirty_data_cache(load_data, n, clsz, j);
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}
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}
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static int cmp(const void *ap, const void *bp)
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{
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const rtems_counter_ticks *a = ap;
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const rtems_counter_ticks *b = bp;
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return *a - *b;
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}
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static void sort_t(void)
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{
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qsort(&t[0], SAMPLES, sizeof(t[0]), cmp);
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}
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static void test_by_function_level(int fl, bool dirty)
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{
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rtems_interrupt_lock lock;
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rtems_interrupt_lock_context lock_context;
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int s;
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uint64_t min;
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uint64_t q1;
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uint64_t q2;
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uint64_t q3;
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uint64_t max;
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rtems_interrupt_lock_initialize(&lock, "test");
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rtems_interrupt_lock_acquire(&lock, &lock_context);
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for (s = 0; s < SAMPLES; ++s) {
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call_at_level(fl, fl, s, dirty);
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}
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rtems_interrupt_lock_release(&lock, &lock_context);
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rtems_interrupt_lock_destroy(&lock);
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sort_t();
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min = t[0];
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q1 = t[(1 * SAMPLES) / 4];
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q2 = t[SAMPLES / 2];
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q3 = t[(3 * SAMPLES) / 4];
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max = t[SAMPLES - 1];
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printf(
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" <Sample functionNestLevel=\"%i\">\n"
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" <Min unit=\"ns\">%" PRIu64 "</Min>"
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"<Q1 unit=\"ns\">%" PRIu64 "</Q1>"
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"<Q2 unit=\"ns\">%" PRIu64 "</Q2>"
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"<Q3 unit=\"ns\">%" PRIu64 "</Q3>"
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"<Max unit=\"ns\">%" PRIu64 "</Max>\n"
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" </Sample>\n",
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fl,
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rtems_counter_ticks_to_nanoseconds(min),
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rtems_counter_ticks_to_nanoseconds(q1),
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rtems_counter_ticks_to_nanoseconds(q2),
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rtems_counter_ticks_to_nanoseconds(q3),
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rtems_counter_ticks_to_nanoseconds(max)
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);
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}
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static void test(bool dirty, uint32_t load)
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{
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int fl;
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printf(
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" <ContextSwitchTest environment=\"%s\"",
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dirty ? "dirty" : "normal"
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);
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if (load > 0) {
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printf(" load=\"%" PRIu32 "\"", load);
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}
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printf(">\n");
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for (fl = 0; fl < FUNCTION_LEVELS; ++fl) {
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test_by_function_level(fl, dirty);
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}
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printf(" </ContextSwitchTest>\n");
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}
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static void Init(rtems_task_argument arg)
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{
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uint32_t load = 0;
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TEST_BEGIN();
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printf("<Test>\n");
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cache_line_size = rtems_cache_get_data_line_size();
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if (cache_line_size == 0) {
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cache_line_size = 32;
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}
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data_size = rtems_cache_get_data_cache_size(0);
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if (data_size == 0) {
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data_size = cache_line_size;
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}
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main_data = malloc(data_size);
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rtems_test_assert(main_data != NULL);
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test(false, load);
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test(true, load);
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for (load = 1; load < rtems_get_processor_count(); ++load) {
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rtems_status_code sc;
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rtems_id id;
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volatile int *load_data = NULL;
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load_data = malloc(data_size);
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if (load_data == NULL) {
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load_data = main_data;
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}
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sc = rtems_task_create(
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rtems_build_name('L', 'O', 'A', 'D'),
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1,
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RTEMS_MINIMUM_STACK_SIZE,
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RTEMS_DEFAULT_MODES,
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RTEMS_DEFAULT_ATTRIBUTES,
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&id
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);
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rtems_test_assert(sc == RTEMS_SUCCESSFUL);
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sc = rtems_task_start(id, load_task, (rtems_task_argument) load_data);
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rtems_test_assert(sc == RTEMS_SUCCESSFUL);
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test(true, load);
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}
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printf("</Test>\n");
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TEST_END();
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rtems_test_exit(0);
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}
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/*
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* Do not use a clock driver, since this will disturb the test in the "normal"
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* environment.
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*/
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#define CONFIGURE_APPLICATION_DOES_NOT_NEED_CLOCK_DRIVER
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#define CONFIGURE_APPLICATION_NEEDS_CONSOLE_DRIVER
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#define CONFIGURE_MAXIMUM_TASKS (1 + CPU_COUNT)
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#define CONFIGURE_INIT_TASK_STACK_SIZE (32 * 1024)
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#define CONFIGURE_SMP_APPLICATION
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#define CONFIGURE_SMP_MAXIMUM_PROCESSORS CPU_COUNT
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#define CONFIGURE_RTEMS_INIT_TASKS_TABLE
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#define CONFIGURE_INIT
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#include <rtems/confdefs.h>
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