566 lines
14 KiB
C++
566 lines
14 KiB
C++
/* -*- Mode: C++; tab-width: 4; indent-tabs-mode: nil; c-basic-offset: 4 -*- */
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/*
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* This file is part of the LibreOffice project.
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*
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* This Source Code Form is subject to the terms of the Mozilla Public
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* License, v. 2.0. If a copy of the MPL was not distributed with this
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* file, You can obtain one at http://mozilla.org/MPL/2.0/.
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*/
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/*
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* Timers are evil beasts across platforms...
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*/
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#include <test/bootstrapfixture.hxx>
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#include <osl/thread.hxx>
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#include <chrono>
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#include <vcl/timer.hxx>
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#include <vcl/idle.hxx>
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#include <vcl/svapp.hxx>
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#include <vcl/scheduler.hxx>
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#include <svdata.hxx>
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#include <salinst.hxx>
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// #define TEST_WATCHDOG
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// Enables timer tests that appear to provoke windows under load unduly.
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//#define TEST_TIMERPRECISION
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namespace {
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/// Avoid our timer tests just wedging the build if they fail.
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class WatchDog : public osl::Thread
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{
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sal_Int32 mnSeconds;
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public:
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explicit WatchDog(sal_Int32 nSeconds) :
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Thread(),
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mnSeconds( nSeconds )
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{
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create();
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}
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virtual void SAL_CALL run() override
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{
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osl::Thread::wait( std::chrono::seconds(mnSeconds) );
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fprintf(stderr, "ERROR: WatchDog timer thread expired, failing the test!\n");
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fflush(stderr);
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CPPUNIT_ASSERT_MESSAGE("watchdog triggered", false);
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}
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};
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}
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static WatchDog * aWatchDog = new WatchDog( 120 ); // random high number in secs
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class TimerTest : public test::BootstrapFixture
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{
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public:
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TimerTest() : BootstrapFixture(true, false) {}
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void testIdle();
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void testIdleMainloop();
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#ifdef TEST_WATCHDOG
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void testWatchdog();
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#endif
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void testDurations();
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#ifdef TEST_TIMERPRECISION
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void testAutoTimer();
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void testMultiAutoTimers();
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#endif
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void testAutoTimerStop();
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void testNestedTimer();
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void testSlowTimerCallback();
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void testTriggerIdleFromIdle();
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void testInvokedReStart();
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void testPriority();
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void testRoundRobin();
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CPPUNIT_TEST_SUITE(TimerTest);
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CPPUNIT_TEST(testIdle);
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CPPUNIT_TEST(testIdleMainloop);
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#ifdef TEST_WATCHDOG
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CPPUNIT_TEST(testWatchdog);
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#endif
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CPPUNIT_TEST(testDurations);
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#ifdef TEST_TIMERPRECISION
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CPPUNIT_TEST(testAutoTimer);
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CPPUNIT_TEST(testMultiAutoTimers);
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#endif
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CPPUNIT_TEST(testAutoTimerStop);
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CPPUNIT_TEST(testNestedTimer);
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CPPUNIT_TEST(testSlowTimerCallback);
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CPPUNIT_TEST(testTriggerIdleFromIdle);
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CPPUNIT_TEST(testInvokedReStart);
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CPPUNIT_TEST(testPriority);
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CPPUNIT_TEST(testRoundRobin);
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CPPUNIT_TEST_SUITE_END();
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};
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#ifdef TEST_WATCHDOG
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void TimerTest::testWatchdog()
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{
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// out-wait the watchdog.
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osl::Thread::wait( std::chrono::seconds(12) );
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}
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#endif
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namespace {
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class IdleBool : public Idle
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{
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bool &mrBool;
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public:
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explicit IdleBool( bool &rBool ) :
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Idle( "IdleBool" ), mrBool( rBool )
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{
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SetPriority( TaskPriority::LOWEST );
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Start();
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mrBool = false;
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}
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virtual void Invoke() override
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{
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mrBool = true;
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Application::EndYield();
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}
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};
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}
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void TimerTest::testIdle()
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{
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bool bTriggered = false;
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IdleBool aTest( bTriggered );
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Scheduler::ProcessEventsToIdle();
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CPPUNIT_ASSERT_MESSAGE("idle triggered", bTriggered);
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}
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void TimerTest::testIdleMainloop()
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{
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bool bTriggered = false;
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IdleBool aTest( bTriggered );
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// coverity[loop_top] - Application::Yield allows the timer to fire and toggle bDone
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while (!bTriggered)
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{
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ImplSVData* pSVData = ImplGetSVData();
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// can't test this via Application::Yield since this
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// also processes all tasks directly via the scheduler.
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pSVData->maAppData.mnDispatchLevel++;
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pSVData->mpDefInst->DoYield(true, false);
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pSVData->maAppData.mnDispatchLevel--;
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}
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CPPUNIT_ASSERT_MESSAGE("mainloop idle triggered", bTriggered);
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}
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namespace {
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class TimerBool : public Timer
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{
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bool &mrBool;
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public:
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TimerBool( sal_uInt64 nMS, bool &rBool ) :
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Timer( "TimerBool" ), mrBool( rBool )
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{
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SetTimeout( nMS );
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Start();
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mrBool = false;
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}
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virtual void Invoke() override
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{
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mrBool = true;
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Application::EndYield();
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}
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};
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}
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void TimerTest::testDurations()
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{
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for (auto const nDuration : { 0, 1, 500, 1000 })
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{
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bool bDone = false;
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TimerBool aTimer( nDuration, bDone );
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// coverity[loop_top] - Application::Yield allows the timer to fire and toggle bDone
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while( !bDone )
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{
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Application::Yield();
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}
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}
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}
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namespace {
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class AutoTimerCount : public AutoTimer
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{
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sal_Int32 &mrCount;
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const sal_Int32 mnMaxCount;
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public:
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AutoTimerCount( sal_uInt64 nMS, sal_Int32 &rCount,
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const sal_Int32 nMaxCount = -1 )
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: AutoTimer( "AutoTimerCount" )
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, mrCount( rCount )
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, mnMaxCount( nMaxCount )
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{
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SetTimeout( nMS );
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Start();
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mrCount = 0;
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}
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virtual void Invoke() override
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{
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++mrCount;
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CPPUNIT_ASSERT( mnMaxCount < 0 || mrCount <= mnMaxCount );
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if ( mrCount == mnMaxCount )
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Stop();
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}
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};
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}
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#ifdef TEST_TIMERPRECISION
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void TimerTest::testAutoTimer()
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{
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const sal_Int32 nDurationMs = 30;
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const sal_Int32 nEventsCount = 5;
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const double exp = (nDurationMs * nEventsCount);
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sal_Int32 nCount = 0;
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std::ostringstream msg;
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// Repeat when we have random latencies.
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// This is expected on non-realtime OSes.
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for (int i = 0; i < 10; ++i)
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{
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const auto start = std::chrono::high_resolution_clock::now();
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nCount = 0;
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AutoTimerCount aCount(nDurationMs, nCount);
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while (nCount < nEventsCount) {
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Application::Yield();
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}
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const auto end = std::chrono::high_resolution_clock::now();
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double dur = std::chrono::duration<double, std::milli>(end - start).count();
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msg << std::setprecision(2) << std::fixed
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<< "periodic multi-timer - dur: "
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<< dur << " (" << exp << ") ms." << std::endl;
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// +/- 20% should be reasonable enough a margin.
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if (dur >= (exp * 0.8) && dur <= (exp * 1.2))
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{
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// Success.
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return;
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}
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}
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CPPUNIT_FAIL(msg.str().c_str());
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}
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void TimerTest::testMultiAutoTimers()
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{
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// The behavior of the timers change drastically
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// when multiple timers are present.
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// The worst, in my tests, is when two
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// timers with 1ms period exist with a
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// third of much longer period.
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const sal_Int32 nDurationMsX = 5;
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const sal_Int32 nDurationMsY = 10;
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const sal_Int32 nDurationMs = 40;
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const sal_Int32 nEventsCount = 5;
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const double exp = (nDurationMs * nEventsCount);
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const double expX = (exp / nDurationMsX);
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const double expY = (exp / nDurationMsY);
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sal_Int32 nCountX = 0;
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sal_Int32 nCountY = 0;
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sal_Int32 nCount = 0;
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std::ostringstream msg;
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// Repeat when we have random latencies.
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// This is expected on non-realtime OSes.
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for (int i = 0; i < 10; ++i)
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{
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nCountX = 0;
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nCountY = 0;
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nCount = 0;
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const auto start = std::chrono::high_resolution_clock::now();
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AutoTimerCount aCountX(nDurationMsX, nCountX);
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AutoTimerCount aCountY(nDurationMsY, nCountY);
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AutoTimerCount aCount(nDurationMs, nCount);
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// coverity[loop_top] - Application::Yield allows the timer to fire and toggle nCount
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while (nCount < nEventsCount) {
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Application::Yield();
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}
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const auto end = std::chrono::high_resolution_clock::now();
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double dur = std::chrono::duration<double, std::milli>(end - start).count();
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msg << std::setprecision(2) << std::fixed << "periodic multi-timer - dur: "
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<< dur << " (" << exp << ") ms, nCount: " << nCount
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<< " (" << nEventsCount << "), nCountX: " << nCountX
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<< " (" << expX << "), nCountY: " << nCountY
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<< " (" << expY << ")." << std::endl;
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// +/- 20% should be reasonable enough a margin.
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if (dur >= (exp * 0.8) && dur <= (exp * 1.2) &&
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nCountX >= (expX * 0.8) && nCountX <= (expX * 1.2) &&
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nCountY >= (expY * 0.8) && nCountY <= (expY * 1.2))
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{
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// Success.
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return;
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}
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}
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CPPUNIT_FAIL(msg.str().c_str());
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}
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#endif // TEST_TIMERPRECISION
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void TimerTest::testAutoTimerStop()
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{
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sal_Int32 nTimerCount = 0;
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const sal_Int32 nMaxCount = 5;
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AutoTimerCount aAutoTimer( 0, nTimerCount, nMaxCount );
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// coverity[loop_top] - Application::Yield allows the timer to fire and increment TimerCount
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while (nMaxCount != nTimerCount)
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Application::Yield();
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CPPUNIT_ASSERT( !aAutoTimer.IsActive() );
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CPPUNIT_ASSERT( !Application::Reschedule() );
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}
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namespace {
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class YieldTimer : public Timer
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{
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public:
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explicit YieldTimer( sal_uInt64 nMS ) : Timer( "YieldTimer" )
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{
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SetTimeout( nMS );
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Start();
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}
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virtual void Invoke() override
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{
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for (int i = 0; i < 100; i++)
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Application::Yield();
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}
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};
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}
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void TimerTest::testNestedTimer()
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{
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sal_Int32 nCount = 0;
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YieldTimer aCount(5);
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AutoTimerCount aCountUp( 3, nCount );
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// coverity[loop_top] - Application::Yield allows the timer to fire and increment nCount
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while (nCount < 20)
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Application::Yield();
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}
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namespace {
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class SlowCallbackTimer : public Timer
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{
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bool &mbSlow;
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public:
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SlowCallbackTimer( sal_uInt64 nMS, bool &bBeenSlow ) :
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Timer( "SlowCallbackTimer" ), mbSlow( bBeenSlow )
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{
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SetTimeout( nMS );
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Start();
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mbSlow = false;
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}
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virtual void Invoke() override
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{
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osl::Thread::wait( std::chrono::seconds(1) );
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mbSlow = true;
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}
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};
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}
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void TimerTest::testSlowTimerCallback()
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{
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bool bBeenSlow = false;
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sal_Int32 nCount = 0;
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AutoTimerCount aHighFreq(1, nCount);
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SlowCallbackTimer aSlow(250, bBeenSlow);
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// coverity[loop_top] - Application::Yield allows the timer to fire and toggle bBeenSlow
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while (!bBeenSlow)
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Application::Yield();
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// coverity[loop_top] - Application::Yield allows the timer to fire and increment nCount
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while (nCount < 200)
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Application::Yield();
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}
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namespace {
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class TriggerIdleFromIdle : public Idle
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{
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bool* mpTriggered;
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TriggerIdleFromIdle* mpOther;
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public:
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explicit TriggerIdleFromIdle( bool* pTriggered, TriggerIdleFromIdle* pOther ) :
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Idle( "TriggerIdleFromIdle" ), mpTriggered(pTriggered), mpOther(pOther)
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{
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}
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virtual void Invoke() override
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{
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Start();
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if (mpOther)
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mpOther->Start();
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Application::Yield();
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if (mpTriggered)
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*mpTriggered = true;
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}
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};
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}
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void TimerTest::testTriggerIdleFromIdle()
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{
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bool bTriggered1 = false;
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bool bTriggered2 = false;
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TriggerIdleFromIdle aTest2( &bTriggered2, nullptr );
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TriggerIdleFromIdle aTest1( &bTriggered1, &aTest2 );
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aTest1.Start();
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Application::Yield();
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CPPUNIT_ASSERT_MESSAGE("idle not triggered", bTriggered1);
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CPPUNIT_ASSERT_MESSAGE("idle not triggered", bTriggered2);
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}
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namespace {
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class IdleInvokedReStart : public Idle
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{
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sal_Int32 &mrCount;
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public:
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IdleInvokedReStart( sal_Int32 &rCount )
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: Idle( "IdleInvokedReStart" ), mrCount( rCount )
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{
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Start();
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}
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virtual void Invoke() override
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{
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mrCount++;
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if ( mrCount < 2 )
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Start();
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}
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};
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}
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void TimerTest::testInvokedReStart()
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{
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sal_Int32 nCount = 0;
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IdleInvokedReStart aIdle( nCount );
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Scheduler::ProcessEventsToIdle();
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CPPUNIT_ASSERT_EQUAL( sal_Int32(2), nCount );
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}
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namespace {
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class IdleSerializer : public Idle
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{
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sal_uInt32 mnPosition;
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sal_uInt32 &mrProcessed;
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public:
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IdleSerializer(const char *pDebugName, TaskPriority ePrio,
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sal_uInt32 nPosition, sal_uInt32 &rProcessed)
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: Idle( pDebugName )
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, mnPosition( nPosition )
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, mrProcessed( rProcessed )
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{
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SetPriority(ePrio);
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Start();
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}
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virtual void Invoke() override
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{
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++mrProcessed;
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CPPUNIT_ASSERT_EQUAL_MESSAGE( "Ignored prio", mnPosition, mrProcessed );
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}
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};
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}
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void TimerTest::testPriority()
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{
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// scope, so tasks are deleted
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{
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// Start: 1st Idle low, 2nd high
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sal_uInt32 nProcessed = 0;
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IdleSerializer aLowPrioIdle("IdleSerializer LowPrio",
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TaskPriority::LOWEST, 2, nProcessed);
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IdleSerializer aHighPrioIdle("IdleSerializer HighPrio",
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TaskPriority::HIGHEST, 1, nProcessed);
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Scheduler::ProcessEventsToIdle();
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CPPUNIT_ASSERT_EQUAL_MESSAGE( "Not all idles processed", sal_uInt32(2), nProcessed );
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}
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{
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// Start: 1st Idle high, 2nd low
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sal_uInt32 nProcessed = 0;
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IdleSerializer aHighPrioIdle("IdleSerializer HighPrio",
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TaskPriority::HIGHEST, 1, nProcessed);
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IdleSerializer aLowPrioIdle("IdleSerializer LowPrio",
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TaskPriority::LOWEST, 2, nProcessed);
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Scheduler::ProcessEventsToIdle();
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CPPUNIT_ASSERT_EQUAL_MESSAGE( "Not all idles processed", sal_uInt32(2), nProcessed );
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}
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}
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namespace {
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class TestAutoIdleRR : public AutoIdle
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{
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sal_uInt32 &mrCount;
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DECL_LINK( IdleRRHdl, Timer *, void );
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public:
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TestAutoIdleRR( sal_uInt32 &rCount,
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const char *pDebugName )
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: AutoIdle( pDebugName )
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, mrCount( rCount )
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{
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CPPUNIT_ASSERT_EQUAL( sal_uInt32(0), mrCount );
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SetInvokeHandler( LINK( this, TestAutoIdleRR, IdleRRHdl ) );
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Start();
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}
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};
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}
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IMPL_LINK_NOARG(TestAutoIdleRR, IdleRRHdl, Timer *, void)
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{
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++mrCount;
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if ( mrCount == 3 )
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Stop();
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}
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void TimerTest::testRoundRobin()
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{
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sal_uInt32 nCount1 = 0, nCount2 = 0;
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TestAutoIdleRR aIdle1( nCount1, "TestAutoIdleRR aIdle1" ),
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aIdle2( nCount2, "TestAutoIdleRR aIdle2" );
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while ( Application::Reschedule() )
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{
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CPPUNIT_ASSERT( nCount1 == nCount2 || nCount1 - 1 == nCount2 );
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CPPUNIT_ASSERT( nCount1 <= 3 );
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CPPUNIT_ASSERT( nCount2 <= 3 );
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}
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CPPUNIT_ASSERT_EQUAL( sal_uInt32(3), nCount1 );
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CPPUNIT_ASSERT_EQUAL( sal_uInt32(3), nCount2 );
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}
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CPPUNIT_TEST_SUITE_REGISTRATION(TimerTest);
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CPPUNIT_PLUGIN_IMPLEMENT();
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/* vim:set shiftwidth=4 softtabstop=4 expandtab: */
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