mirror of https://github.com/ARMmbed/mbed-os.git
275 lines
7.5 KiB
C++
275 lines
7.5 KiB
C++
/* mbed Microcontroller Library
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* Copyright (c) 2017 ARM Limited
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#if !MBED_TICKLESS
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#error [NOT_SUPPORTED] Tickless mode not supported for this target.
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#endif
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#if !DEVICE_LOWPOWERTIMER
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#error [NOT_SUPPORTED] Current SysTimer implementation requires lp ticker support.
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#endif
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#include "mbed.h"
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#include "greentea-client/test_env.h"
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#include "unity.h"
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#include "utest.h"
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extern "C" {
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#include "rtx_lib.h"
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}
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#include "rtos/TARGET_CORTEX/SysTimer.h"
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#define TEST_TICKS 42UL
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#define DELAY_DELTA_US 2500ULL
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using namespace utest::v1;
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const us_timestamp_t DELAY_US = 1000000ULL * TEST_TICKS / OS_TICK_FREQ;
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// Override the handler() -- the SysTick interrupt must not be set as pending by the test code.
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class SysTimerTest: public rtos::internal::SysTimer {
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private:
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Semaphore _sem;
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virtual void handler()
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{
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increment_tick();
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_sem.release();
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}
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public:
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SysTimerTest() :
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SysTimer(), _sem(0, 1)
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{
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}
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virtual ~SysTimerTest()
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{
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}
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int32_t sem_wait(uint32_t millisec)
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{
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return _sem.wait(millisec);
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}
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};
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/** Test tick count is zero upon creation
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*
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* Given a SysTimer
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* When the timer is created
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* Then tick count is zero
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*/
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void test_created_with_zero_tick_count(void)
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{
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SysTimerTest st;
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TEST_ASSERT_EQUAL_UINT32(0, st.get_tick());
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}
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/** Test tick count is updated correctly
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*
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* Given a SysTimer
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* When @a update_tick method is called immediately after creation
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* Then the tick count is not updated
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* When @a update_tick is called again after a delay
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* Then the tick count is updated
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* and the number of ticks incremented is equal TEST_TICKS - 1
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* When @a update_tick is called again without a delay
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* Then the tick count is not updated
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*/
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void test_update_tick(void)
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{
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SysTimerTest st;
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TEST_ASSERT_EQUAL_UINT32(0, st.update_tick());
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TEST_ASSERT_EQUAL_UINT32(0, st.get_tick());
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us_timestamp_t test_ticks_elapsed_ts = st.get_time() + DELAY_US;
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while (st.get_time() <= test_ticks_elapsed_ts) {}
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TEST_ASSERT_EQUAL_UINT32(TEST_TICKS - 1, st.update_tick());
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TEST_ASSERT_EQUAL_UINT32(TEST_TICKS - 1, st.get_tick());
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TEST_ASSERT_EQUAL_UINT32(0, st.update_tick());
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TEST_ASSERT_EQUAL_UINT32(TEST_TICKS - 1, st.get_tick());
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}
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/** Test get_time returns correct time
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*
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* Given a SysTimer
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* When @a get_time method is called before and after a delay
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* Then time difference is equal the delay
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*/
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void test_get_time(void)
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{
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SysTimerTest st;
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us_timestamp_t t1 = st.get_time();
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wait_us(DELAY_US);
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us_timestamp_t t2 = st.get_time();
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TEST_ASSERT_UINT64_WITHIN(DELAY_DELTA_US, DELAY_US, t2 - t1);
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}
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/** Test cancel_tick
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*
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* Given a SysTimer with a scheduled tick
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* When @a cancel_tick is called before the given number of ticks elapse
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* Then the handler is never called
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* and the tick count is not incremented
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*/
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void test_cancel_tick(void)
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{
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SysTimerTest st;
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st.cancel_tick();
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st.schedule_tick(TEST_TICKS);
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st.cancel_tick();
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int32_t sem_slots = st.sem_wait((DELAY_US + DELAY_DELTA_US) / 1000ULL);
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TEST_ASSERT_EQUAL_INT32(0, sem_slots);
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TEST_ASSERT_EQUAL_UINT32(0, st.get_tick());
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}
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/** Test schedule zero
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*
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* Given a SysTimer
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* When a tick is scheduled with delta = 0 ticks
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* Then the handler is called instantly
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*/
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void test_schedule_zero(void)
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{
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SysTimerTest st;
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st.schedule_tick(0UL);
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int32_t sem_slots = st.sem_wait(0UL);
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TEST_ASSERT_EQUAL_INT32(1, sem_slots);
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}
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/** Test handler called once
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*
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* Given a SysTimer with a tick scheduled with delta = TEST_TICKS
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* When the handler is called
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* Then the tick count is incremented by 1
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* and elapsed time is equal 1000000ULL * TEST_TICKS / OS_TICK_FREQ;
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* When more time elapses
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* Then the handler is not called again
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*/
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void test_handler_called_once(void)
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{
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SysTimerTest st;
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st.schedule_tick(TEST_TICKS);
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us_timestamp_t t1 = st.get_time();
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int32_t sem_slots = st.sem_wait(0);
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TEST_ASSERT_EQUAL_INT32(0, sem_slots);
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sem_slots = st.sem_wait(osWaitForever);
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us_timestamp_t t2 = st.get_time();
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TEST_ASSERT_EQUAL_INT32(1, sem_slots);
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TEST_ASSERT_EQUAL_UINT32(1, st.get_tick());
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TEST_ASSERT_UINT64_WITHIN(DELAY_DELTA_US, DELAY_US, t2 - t1);
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sem_slots = st.sem_wait((DELAY_US + DELAY_DELTA_US) / 1000ULL);
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TEST_ASSERT_EQUAL_INT32(0, sem_slots);
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TEST_ASSERT_EQUAL_UINT32(1, st.get_tick());
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}
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/** Test wake up from sleep
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*
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* Given a SysTimer with a tick scheduled in the future
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* and a core in sleep mode
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* When given time elapses
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* Then the uC is woken up from sleep
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* and the tick handler is called
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* and measured time matches requested delay
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*/
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void test_sleep(void)
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{
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Timer timer;
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SysTimerTest st;
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sleep_manager_lock_deep_sleep();
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timer.start();
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st.schedule_tick(TEST_TICKS);
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TEST_ASSERT_FALSE_MESSAGE(sleep_manager_can_deep_sleep(), "Deep sleep should be disallowed");
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while (st.sem_wait(0) != 1) {
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sleep();
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}
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timer.stop();
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sleep_manager_unlock_deep_sleep();
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TEST_ASSERT_UINT64_WITHIN(DELAY_DELTA_US, DELAY_US, timer.read_high_resolution_us());
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}
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#if DEVICE_LOWPOWERTIMER
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/** Test wake up from deepsleep
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*
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* Given a SysTimer with a tick scheduled in the future
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* and a core in deepsleep mode
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* When given time elapses
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* Then the uC is woken up from deepsleep
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* and the tick handler is called
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* and measured time matches requested delay
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*/
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void test_deepsleep(void)
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{
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/*
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* Since deepsleep() may shut down the UART peripheral, we wait for 10ms
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* to allow for hardware serial buffers to completely flush.
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* This should be replaced with a better function that checks if the
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* hardware buffers are empty. However, such an API does not exist now,
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* so we'll use the wait_ms() function for now.
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*/
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wait_ms(10);
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// Regular Timer might be disabled during deepsleep.
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LowPowerTimer lptimer;
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SysTimerTest st;
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lptimer.start();
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st.schedule_tick(TEST_TICKS);
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TEST_ASSERT_TRUE_MESSAGE(sleep_manager_can_deep_sleep(), "Deep sleep should be allowed");
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while (st.sem_wait(0) != 1) {
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sleep();
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}
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lptimer.stop();
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TEST_ASSERT_UINT64_WITHIN(DELAY_DELTA_US, DELAY_US, lptimer.read_high_resolution_us());
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}
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#endif
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utest::v1::status_t test_setup(const size_t number_of_cases)
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{
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GREENTEA_SETUP(5, "default_auto");
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return verbose_test_setup_handler(number_of_cases);
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}
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Case cases[] = {
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Case("Tick count is zero upon creation", test_created_with_zero_tick_count),
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Case("Tick count is updated correctly", test_update_tick),
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Case("Time is updated correctly", test_get_time),
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Case("Tick can be cancelled", test_cancel_tick),
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Case("Schedule zero ticks", test_schedule_zero),
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Case("Handler called once", test_handler_called_once),
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Case("Wake up from sleep", test_sleep),
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#if DEVICE_LOWPOWERTIMER
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Case("Wake up from deep sleep", test_deepsleep),
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#endif
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};
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Specification specification(test_setup, cases);
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int main()
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{
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return !Harness::run(specification);
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}
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