mirror of
https://github.com/RT-Thread/rt-thread.git
synced 2026-09-22 11:30:01 +08:00
[add][thread]Add api:rt_thread_suspend_force allow suspend other threads.
This commit is contained in:
@@ -44,6 +44,7 @@ if GetDepend(['UTEST_MAILBOX_TC']):
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if GetDepend(['UTEST_THREAD_TC']):
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src += ['thread_tc.c']
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src += ['thread_overflow_tc.c']
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src += ['thread_suspend_tc.c']
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if GetDepend(['UTEST_DEVICE_TC']):
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src += ['device_tc.c']
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@@ -0,0 +1,478 @@
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/*
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* Copyright (c) 2025, RT-Thread Development Team
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*
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* SPDX-License-Identifier: Apache-2.0
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*
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* Change Logs:
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* Date Author Notes
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* 2025-09-02 Rbb666 utest case for rt_thread_suspend comprehensive tests
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*/
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#include <rtthread.h>
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#include <rtdevice.h>
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#include "utest.h"
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#define THREAD_STACK_SIZE 1024
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#define THREAD_TIMESLICE 5
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#define TEST_THREAD_PRIORITY 25
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/* Global variables for normal usage test */
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static rt_thread_t target_thread = RT_NULL;
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static rt_thread_t monitor_thread = RT_NULL;
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static rt_sem_t sync_sem = RT_NULL;
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static volatile rt_uint32_t work_counter = 0;
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static volatile rt_bool_t suspend_test_done = RT_FALSE;
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static volatile rt_bool_t suspend_success = RT_FALSE;
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static volatile rt_bool_t resume_success = RT_FALSE;
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/* Global variables for deadlock test */
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static rt_mutex_t test_mutex = RT_NULL;
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static rt_thread_t holder_thread = RT_NULL;
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static rt_thread_t waiter_thread = RT_NULL;
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static volatile rt_uint32_t shared_counter = 0;
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static volatile rt_bool_t holder_got_mutex = RT_FALSE;
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static volatile rt_bool_t deadlock_detected = RT_FALSE;
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static volatile rt_bool_t test_completed = RT_FALSE;
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static volatile rt_bool_t thread_started = RT_FALSE;
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static volatile rt_bool_t thread_should_exit = RT_FALSE;
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/* Target work thread - the thread to be suspended */
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static void target_work_thread(void *parameter)
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{
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while (1)
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{
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if (!suspend_test_done)
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{
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work_counter++;
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}
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/* Yield CPU appropriately to simulate normal work */
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rt_thread_mdelay(10);
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}
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}
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/* Monitor thread - responsible for suspending and resuming target thread */
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static void monitor_control_thread(void *parameter)
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{
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rt_uint32_t counter_before, counter_after;
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/* Wait for target thread to start working */
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rt_thread_mdelay(300);
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/* Record counter value before suspend */
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counter_before = work_counter;
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/* Use rt_thread_suspend to suspend target thread */
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if (rt_thread_suspend(target_thread) == RT_EOK)
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{
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suspend_success = RT_TRUE;
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/* Trigger scheduling to ensure thread is suspended */
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rt_schedule();
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/* Wait for a while to verify thread is indeed suspended */
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rt_thread_mdelay(500);
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counter_after = work_counter;
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/* Verify thread is indeed suspended (counter should stop changing) */
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if (counter_after == counter_before)
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{
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/* Resume target thread */
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if (rt_thread_resume(target_thread) == RT_EOK)
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{
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resume_success = RT_TRUE;
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/* Wait for a while to verify thread resumes work */
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rt_thread_mdelay(200);
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}
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}
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}
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/* End test */
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suspend_test_done = RT_TRUE;
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/* Send semaphore to notify test completion */
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rt_sem_release(sync_sem);
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/* Keep running until deleted */
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while (1)
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{
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rt_thread_mdelay(100);
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}
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}
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/* Thread that holds the mutex */
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static void mutex_holder_thread(void *parameter)
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{
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if (rt_mutex_take(test_mutex, RT_WAITING_FOREVER) == RT_EOK)
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{
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holder_got_mutex = RT_TRUE;
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/* Simulate critical section work */
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for (int i = 0; i < 1000 && !test_completed; i++)
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{
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shared_counter++;
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if (i % 200 == 0)
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{
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rt_thread_mdelay(10);
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}
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}
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if (!test_completed)
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{
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rt_mutex_release(test_mutex);
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}
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}
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rt_kprintf("Holder thread exiting\n");
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/* Keep running until deleted */
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while (1)
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{
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rt_thread_mdelay(100);
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}
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}
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/* Thread that waits for the mutex */
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static void mutex_waiter_thread(void *parameter)
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{
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/* Wait a bit to ensure holder gets mutex first */
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rt_thread_mdelay(50);
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rt_err_t result = rt_mutex_take(test_mutex, rt_tick_from_millisecond(1500));
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if (result == RT_EOK)
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{
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shared_counter += 1000;
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rt_mutex_release(test_mutex);
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}
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else
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{
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/* Timeout indicates deadlock - holder is suspended and cannot release lock */
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deadlock_detected = RT_TRUE;
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rt_kprintf("Deadlock detected: waiter timeout (holder suspended with mutex)\n");
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}
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/* Keep running until deleted */
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while (1)
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{
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rt_thread_mdelay(100);
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}
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}
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void simple_thread_entry(void *param)
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{
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volatile rt_bool_t *flag = (volatile rt_bool_t *)param;
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*flag = RT_TRUE;
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/* Keep the thread running until it's suspended and deleted */
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while (1)
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{
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rt_thread_mdelay(100);
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}
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}
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/* Test normal usage of rt_thread_suspend function */
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static void test_suspend_force_normal_usage(void)
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{
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/* Reset global variables */
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work_counter = 0;
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suspend_test_done = RT_FALSE;
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suspend_success = RT_FALSE;
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resume_success = RT_FALSE;
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/* Create synchronization semaphore */
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sync_sem = rt_sem_create("sync", 0, RT_IPC_FLAG_FIFO);
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uassert_not_null(sync_sem);
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/* Create target work thread */
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target_thread = rt_thread_create("target",
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target_work_thread,
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RT_NULL,
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THREAD_STACK_SIZE,
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TEST_THREAD_PRIORITY,
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THREAD_TIMESLICE);
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uassert_not_null(target_thread);
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/* Create monitor thread */
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monitor_thread = rt_thread_create("monitor",
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monitor_control_thread,
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RT_NULL,
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THREAD_STACK_SIZE,
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UTEST_THR_PRIORITY,
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THREAD_TIMESLICE);
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uassert_not_null(monitor_thread);
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/* Start threads */
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rt_thread_startup(target_thread);
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rt_thread_startup(monitor_thread);
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/* Wait for test completion */
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rt_sem_take(sync_sem, RT_WAITING_FOREVER);
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/* Wait for a while to ensure threads exit normally */
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rt_thread_mdelay(100);
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/* Verify test results */
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uassert_true(suspend_success);
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uassert_true(resume_success);
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uassert_true(work_counter > 0);
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/* Clean up resources */
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if (sync_sem)
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{
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rt_sem_delete(sync_sem);
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sync_sem = RT_NULL;
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}
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/* Delete threads */
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if (target_thread != RT_NULL)
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{
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rt_thread_delete(target_thread);
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target_thread = RT_NULL;
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}
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if (monitor_thread != RT_NULL)
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{
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rt_thread_delete(monitor_thread);
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monitor_thread = RT_NULL;
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}
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}
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/* Basic API test */
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static void test_suspend_force_api_basic(void)
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{
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rt_thread_t api_thread;
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/* Reset global variables */
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thread_started = RT_FALSE;
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thread_should_exit = RT_FALSE;
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/* Create a simple test thread */
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api_thread = rt_thread_create("api_test",
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simple_thread_entry,
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(void *)&thread_started,
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THREAD_STACK_SIZE,
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UTEST_THR_PRIORITY,
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THREAD_TIMESLICE);
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uassert_not_null(api_thread);
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rt_thread_startup(api_thread);
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rt_thread_mdelay(50); /* Wait for thread to start */
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uassert_true(thread_started);
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/* Test basic suspend functionality */
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rt_err_t result = rt_thread_suspend(api_thread);
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uassert_true(result == RT_EOK);
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rt_schedule();
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rt_thread_mdelay(100);
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/* Resume thread */
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result = rt_thread_resume(api_thread);
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uassert_true(result == RT_EOK);
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rt_thread_mdelay(50);
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/* Clean up - delete the thread directly */
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if (api_thread != RT_NULL)
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{
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rt_thread_delete(api_thread);
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api_thread = RT_NULL;
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}
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/* Reset global variables for next test */
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thread_started = RT_FALSE;
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thread_should_exit = RT_FALSE;
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}
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/* Test suspend on thread that is created but not started */
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static void test_suspend_force_not_started_thread(void)
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{
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rt_thread_t not_started_thread;
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/* Create a thread but don't start it */
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not_started_thread = rt_thread_create("not_started",
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simple_thread_entry,
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(void *)&thread_started,
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THREAD_STACK_SIZE,
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UTEST_THR_PRIORITY,
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THREAD_TIMESLICE);
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uassert_not_null(not_started_thread);
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/* Verify thread is in INIT state */
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uassert_true((RT_SCHED_CTX(not_started_thread).stat & RT_THREAD_STAT_MASK) == RT_THREAD_INIT);
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/* Try to suspend a thread that hasn't been started yet */
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rt_err_t suspend_result = rt_thread_suspend(not_started_thread);
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rt_schedule();
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uassert_true(suspend_result == -RT_ERROR);
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/* Try to resume the not-started thread */
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rt_err_t resume_result = rt_thread_resume(not_started_thread);
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uassert_true(resume_result == -RT_EINVAL);
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/* Now start the thread to see if it works normally */
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rt_err_t startup_result = rt_thread_startup(not_started_thread);
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uassert_true(startup_result == RT_EOK);
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/* Wait a bit to see if thread starts normally */
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rt_thread_mdelay(100);
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/* The thread should have started successfully despite previous suspend/resume calls */
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uassert_true(thread_started == RT_TRUE);
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/* Clean up */
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if (not_started_thread != RT_NULL)
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{
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rt_thread_delete(not_started_thread);
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not_started_thread = RT_NULL;
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}
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/* Reset flag for next test */
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thread_started = RT_FALSE;
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}
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/* Test deadlock risk */
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static void test_suspend_force_deadlock_risk(void)
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{
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/* Reset global variables */
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shared_counter = 0;
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holder_got_mutex = RT_FALSE;
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deadlock_detected = RT_FALSE;
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test_completed = RT_FALSE;
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/* Create mutex */
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test_mutex = rt_mutex_create("test_mutex", RT_IPC_FLAG_PRIO);
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uassert_not_null(test_mutex);
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/* Create and start holder thread */
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holder_thread = rt_thread_create("holder", mutex_holder_thread, RT_NULL,
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THREAD_STACK_SIZE, UTEST_THR_PRIORITY, THREAD_TIMESLICE);
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uassert_not_null(holder_thread);
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rt_thread_startup(holder_thread);
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/* Create and start waiter thread */
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waiter_thread = rt_thread_create("waiter", mutex_waiter_thread, RT_NULL,
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THREAD_STACK_SIZE, UTEST_THR_PRIORITY + 1, THREAD_TIMESLICE);
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uassert_not_null(waiter_thread);
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/* Now start waiter thread, it will try to acquire mutex held by suspended thread */
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rt_thread_startup(waiter_thread);
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/* Wait for holder to get mutex */
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int timeout = 100; /* 1 second timeout */
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while (!holder_got_mutex && timeout-- > 0)
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{
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rt_thread_mdelay(10);
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}
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uassert_true(holder_got_mutex);
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/* This is the critical test! Suspend thread that holds the mutex */
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rt_err_t suspend_result = rt_thread_suspend(holder_thread);
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uassert_true(suspend_result == RT_EOK);
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rt_kprintf("Suspended holder thread (which holds the mutex)\n");
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rt_schedule();
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/* Wait for waiter thread to try acquiring lock */
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rt_thread_mdelay(2000);
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uassert_true(deadlock_detected == RT_TRUE);
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/* Resume thread */
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rt_err_t resume_result = rt_thread_resume(holder_thread);
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uassert_true(resume_result == RT_EOK);
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rt_kprintf("Resumed holder thread\n");
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test_completed = RT_TRUE;
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/* Wait for threads to complete */
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rt_thread_mdelay(1000);
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/* Verify rt_thread_suspend and rt_thread_resume executed successfully */
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uassert_true(suspend_result == RT_EOK);
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uassert_true(resume_result == RT_EOK);
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/* Verify system didn't crash, threads can work normally */
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uassert_true(shared_counter > 0);
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/* Clean up resources */
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if (test_mutex)
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{
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rt_mutex_delete(test_mutex);
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test_mutex = RT_NULL;
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}
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/* Delete threads */
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if (holder_thread != RT_NULL)
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{
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rt_thread_delete(holder_thread);
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holder_thread = RT_NULL;
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}
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if (waiter_thread != RT_NULL)
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{
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rt_thread_delete(waiter_thread);
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waiter_thread = RT_NULL;
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}
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/* Wait again to ensure threads are cleaned up */
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rt_thread_mdelay(200);
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}
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static rt_err_t utest_tc_init(void)
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{
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return RT_EOK;
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}
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static rt_err_t utest_tc_cleanup(void)
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{
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/* Reset all global variables to ensure clean state between tests */
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work_counter = 0;
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suspend_test_done = RT_FALSE;
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suspend_success = RT_FALSE;
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resume_success = RT_FALSE;
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shared_counter = 0;
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holder_got_mutex = RT_FALSE;
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deadlock_detected = RT_FALSE;
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test_completed = RT_FALSE;
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thread_started = RT_FALSE;
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thread_should_exit = RT_FALSE;
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/* Clean up any remaining resources - safety check */
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if (sync_sem != RT_NULL)
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{
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rt_sem_delete(sync_sem);
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sync_sem = RT_NULL;
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}
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if (test_mutex != RT_NULL)
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{
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rt_mutex_delete(test_mutex);
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test_mutex = RT_NULL;
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}
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/* Ensure all thread pointers are NULL */
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target_thread = RT_NULL;
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monitor_thread = RT_NULL;
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holder_thread = RT_NULL;
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waiter_thread = RT_NULL;
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/* Give system time to complete cleanup */
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rt_thread_mdelay(50);
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return RT_EOK;
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}
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static void testcase(void)
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{
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UTEST_UNIT_RUN(test_suspend_force_api_basic);
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UTEST_UNIT_RUN(test_suspend_force_not_started_thread);
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UTEST_UNIT_RUN(test_suspend_force_normal_usage);
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UTEST_UNIT_RUN(test_suspend_force_deadlock_risk);
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}
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UTEST_TC_EXPORT(testcase, "testcases.kernel.thread_suspend", utest_tc_init, utest_tc_cleanup, 30);
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