author | Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com> |
Mon, 21 Jun 2010 17:12:14 +0300 | |
branch | RCL_3 |
changeset 39 | 2bb754abd467 |
parent 0 | a41df078684a |
permissions | -rw-r--r-- |
0 | 1 |
// Copyright (c) 2002-2009 Nokia Corporation and/or its subsidiary(-ies). |
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// All rights reserved. |
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// This component and the accompanying materials are made available |
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// under the terms of the License "Eclipse Public License v1.0" |
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// which accompanies this distribution, and is available |
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// at the URL "http://www.eclipse.org/legal/epl-v10.html". |
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// |
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// Initial Contributors: |
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// Nokia Corporation - initial contribution. |
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// |
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// Contributors: |
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// |
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// Description: |
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// |
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#include "k32bm.h" |
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const TUint8 KMutexOrder = 0xf0; |
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class DBMLDevice : public DLogicalDevice |
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{ |
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public: |
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DBMLDevice(); |
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virtual TInt Install(); |
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virtual void GetCaps(TDes8& aDes) const; |
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virtual TInt Create(DLogicalChannelBase*& aChannel); |
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}; |
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class DBMLChannel : public DLogicalChannelBase, public MBMIsr, public MBMInterruptLatencyIsr |
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{ |
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public: |
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DBMLChannel(); |
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~DBMLChannel(); |
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virtual TInt DoCreate(TInt aUnit, const TDesC8* anInfo, const TVersion& aVer); |
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virtual TInt Request(TInt aFunction, TAny* a1, TAny* a2); |
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DBMPChannel* PChannel() { return (DBMPChannel*) iPdd; } |
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private: |
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static const TInt KBMDfcQThreadPriority; |
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static const TInt KBMKernelThreadPriority; |
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static void Dfc(TAny*); |
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virtual void Isr(TBMTicks now); |
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TInt (DBMLChannel::*iRequestInterrupt)(); // Measurement specific RBMChannel::RequestInterrupt() implmentation |
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TInt RequestInterrupt(); // Default iRequestInterrupt() implementation |
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TBMTicks (DBMLChannel::*iResult)(); // Measurement specific RBMChannel::Result() implmentation |
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TBMTicks Result(); // Default iResult() implementation |
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TInt Start(RBMChannel::TMode); |
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TInt StartInterruptLatency(); |
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virtual void InterruptLatencyIsr(TBMTicks latency); |
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TInt StartKernelPreemptionLatency(); |
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static TInt KernelPreemptionLatencyThreadEntry(TAny* ptr); |
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void KernelPreemptionLatencyThread(); |
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TInt StartUserPreemptionLatency(); |
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TBMTicks UserPreemptionLatencyResult(); // iResult() implementation |
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TInt StartNTimerJitter(); |
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TInt RequestNTimerJitterInterrupt(); // iRequestInterrupt() implementation |
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static void NTimerJitterCallBack(TAny*); |
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TInt StartTimerStampOverhead(); |
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TInt RequestTimerStampOverhead(); // iRequestInterrupt() implementation |
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39
2bb754abd467
Revision: 201025
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
73 |
TInt SetAbsPriority(TInt aThreadHandle, TInt aNewPrio, TInt* aOldPrio); |
0 | 74 |
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DMutex* iLock; // Shall be acquired by anyone who access the object's writable state. |
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TBool iStarted; // ETrue when a particular sequence of measurements has been started |
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TBool iPendingInterruptRequest; // ETrue when an interrupt has been requested |
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TDynamicDfcQue* iDfcQ; |
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TDfc iDfc; |
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DThread* iKernelThread; // the kernel thread created by some benchmarks |
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DThread* iUserThread; // the user-side thread |
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DThread* iInterruptThread; // the thread signaled by DFC; if non-NULL either iKernelThread or iUserThread |
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NTimer iNTimer; // the timer used in "NTimer jitter" benchmark |
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TBMTicks iOneNTimerTick; // number of high-resolution timer ticks in one NKern tick. |
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TInt iNTimerShotCount; // used in "NTimer jitter" to distinguish between the first and the second shots |
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TBMTicks iTime; |
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TBMTicks iTimerPeriod; // period of high-resolution timer in ticks |
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NFastSemaphore* iKernelThreadExitSemaphore; |
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void Lock() |
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{ |
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NKern::ThreadEnterCS(); |
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Kern::MutexWait(*iLock); |
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} |
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void Unlock() |
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{ |
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Kern::MutexSignal(*iLock); |
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NKern::ThreadLeaveCS(); |
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} |
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TBMTicks Delta(TBMTicks aT0, TBMTicks aT1) |
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{ |
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return (aT0 <= aT1) ? (aT1 - aT0) : iTimerPeriod - (aT0 - aT1); |
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} |
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}; |
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_LIT(KBMLChannelLit, "BMLChannel"); |
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const TInt DBMLChannel::KBMDfcQThreadPriority = KBMLDDHighPriority; |
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const TInt DBMLChannel::KBMKernelThreadPriority = KBMLDDMidPriority; |
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DECLARE_STANDARD_LDD() |
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// |
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// Create a new device |
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// |
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{ |
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__ASSERT_CRITICAL; |
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return new DBMLDevice; |
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} |
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DBMLDevice::DBMLDevice() |
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// |
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// Constructor |
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// |
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{ |
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//iUnitsMask=0; |
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iVersion = TVersion(1,0,1); |
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iParseMask = KDeviceAllowPhysicalDevice; |
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} |
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TInt DBMLDevice::Install() |
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// |
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// Install the device driver. |
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// |
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{ |
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TInt r = SetName(&KBMLdName); |
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return r; |
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} |
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void DBMLDevice::GetCaps(TDes8&) const |
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// |
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// Return the Comm capabilities. |
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// |
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{ |
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} |
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TInt DBMLDevice::Create(DLogicalChannelBase*& aChannel) |
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// |
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// Create a channel on the device. |
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// |
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{ |
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__ASSERT_CRITICAL; |
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aChannel = new DBMLChannel; |
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return aChannel ? KErrNone : KErrNoMemory; |
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} |
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DBMLChannel::DBMLChannel() : |
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iDfc(0, this, 0, 0), |
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iNTimer(NULL, this) |
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{ |
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// iDfcQueue = NULL; |
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// iStarted = EFalse; |
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// iPendingInterruptRequest = EFalse; |
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// iKernelThread = NULL; |
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} |
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TInt DBMLChannel::DoCreate(TInt /*aUnit*/, const TDesC8* /* aInfo*/ , const TVersion& aVer) |
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// |
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// Create the channel from the passed info. |
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// |
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{ |
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__ASSERT_CRITICAL; |
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if (!Kern::QueryVersionSupported(TVersion(1,0,1),aVer)) |
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return KErrNotSupported; |
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TInt r = Kern::MutexCreate(iLock, KBMLChannelLit, KMutexOrder); |
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if (r != KErrNone) |
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{ |
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return r; |
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} |
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iTimerPeriod = PChannel()->TimerPeriod(); |
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// Calculate the number of high-resolution timer ticks in one NKern tick |
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// deviding the number of high-resolution timer ticks in one second by the |
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// number of NKern ticks in one second. |
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// |
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iOneNTimerTick = PChannel()->TimerNsToTicks(BMSecondsToNs(1))/NKern::TimerTicks(1000); |
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return KErrNone; |
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} |
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DBMLChannel::~DBMLChannel() |
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// Called on a channel close. Note that if the PDD channel create failed |
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// then the DoCreate() call will not have been made so don't assume anything |
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// about non-ctor initialisation of members. |
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{ |
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if (iLock) |
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iLock->Close(0); |
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if (iPendingInterruptRequest) |
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{ |
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PChannel()->CancelInterrupt(); |
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iDfc.Cancel(); |
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} |
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if (iDfcQ) |
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{ |
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iDfcQ->Destroy(); |
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} |
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if (iKernelThread) |
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{ |
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NFastSemaphore exitSemaphore; |
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exitSemaphore.iOwningThread = NKern::CurrentThread(); |
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iKernelThreadExitSemaphore = &exitSemaphore; |
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NKern::ThreadRequestSignal(&iKernelThread->iNThread); |
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NKern::FSWait(&exitSemaphore); |
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} |
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} |
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void DBMLChannel::Dfc(TAny* ptr) |
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{ |
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DBMLChannel* lCh = (DBMLChannel*) ptr; |
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BM_ASSERT(lCh->iPendingInterruptRequest); |
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BM_ASSERT(lCh->iInterruptThread); |
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NKern::ThreadRequestSignal(&lCh->iInterruptThread->iNThread); |
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lCh->iPendingInterruptRequest = EFalse; |
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} |
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// |
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// Default DBMLChannel::iRequestInterrupt implementation |
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// |
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TInt DBMLChannel::RequestInterrupt() |
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{ |
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if (!iStarted) |
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{ |
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return KErrNotReady; |
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} |
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if (iPendingInterruptRequest) |
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{ |
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return KErrInUse; |
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} |
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iPendingInterruptRequest = ETrue; |
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PChannel()->RequestInterrupt(); |
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return KErrNone; |
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} |
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// |
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// Default DBMLChannel::iResult implementation |
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// |
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TBMTicks DBMLChannel::Result() |
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{ |
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return iTime; |
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} |
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void DBMLChannel::Isr(TBMTicks aNow) |
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{ |
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// |
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// Store the ISR entry time and queue a DFC. |
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// |
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iTime = aNow; |
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iDfc.Add(); |
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} |
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// |
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// "INTERRUPT LATENCY" |
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// |
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// SCENARIO: |
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// |
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// A user thread requests an interrupt (RBMChannel::RequestInterrupt()) and waits at User::WaitForAnyRequest() |
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// (RBMChannel::Result()). |
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// When the interrupt occurs DBMLChannel::InterruptLatencyIsr() stores the interrupt latency |
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// provided by LDD, in DBMLChannel::iTime and queues a DFC (DBMLChannel::iDfc, DBMLChannel::Dfc()) |
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// which in its turn signals the user thread. |
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// |
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TInt DBMLChannel::StartInterruptLatency() |
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{ |
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if (iStarted) |
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{ |
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return KErrInUse; |
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} |
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TInt r = PChannel()->BindInterrupt((MBMInterruptLatencyIsr*) this); |
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if (r != KErrNone) |
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{ |
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return r; |
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} |
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// Use the default iRequestInterrupt() implmentation |
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iRequestInterrupt = &DBMLChannel::RequestInterrupt; |
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// Use the default iResult() implmentation |
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iResult = &DBMLChannel::Result; |
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iInterruptThread = &Kern::CurrentThread(); |
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iStarted = ETrue; |
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return KErrNone; |
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} |
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void DBMLChannel::InterruptLatencyIsr(TBMTicks aLatency) |
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{ |
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iTime = aLatency; |
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iDfc.Add(); |
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} |
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// |
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// "KERNEL THREAD PREEMPTION LATENCY" |
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// |
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// SCENARIO: |
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// |
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// A new kernel thread is created at the beginning of a sequence of measurements |
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// (DBMLChannel::StartKernelPreemptionLatency()). The kernel thread waits at Kern::WaitForAnyRequest() |
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// (DBMLChannel::KernelPreemptionLatencyThread()). |
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// The user thread requests an interrupt (RBMChannel::RequestInterrupt()) and waits at User::WaitForAnyRequest() |
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// (RBMChannel::Result()). |
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// When the interrupt occurs DBMLChannel::Isr() stores the ISR entry time, provided by LDD |
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// in DBMLChannel::iTime and queues a DFC (DBMLChannel::iDfc, DBMLChannel::Dfc()) which, in its turn, |
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// signals the kernel thread. |
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// The kernel thread, when awaken, calculates the latency as the difference between the ISR entry time |
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// and the current time and finally signals the user thread. |
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// |
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TInt DBMLChannel::StartKernelPreemptionLatency() |
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{ |
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if (iStarted) |
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{ |
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return KErrInUse; |
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} |
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TInt r = PChannel()->BindInterrupt((MBMIsr*) this); |
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if (r != KErrNone) |
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{ |
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return r; |
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} |
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{ |
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SThreadCreateInfo info; |
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info.iType = EThreadSupervisor; |
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info.iFunction = DBMLChannel::KernelPreemptionLatencyThreadEntry; |
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info.iPtr = this; |
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info.iSupervisorStack = NULL; |
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info.iSupervisorStackSize = 0; |
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info.iInitialThreadPriority = KBMKernelThreadPriority; |
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info.iName.Set(KBMLChannelLit); |
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info.iTotalSize = sizeof(info); |
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r = Kern::ThreadCreate(info); |
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if (r != KErrNone) |
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{ |
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return r; |
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} |
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iKernelThread = (DThread*) info.iHandle; |
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} |
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iUserThread = &Kern::CurrentThread(); |
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// Use the default iRequestInterrupt() implmentation |
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iRequestInterrupt = &DBMLChannel::RequestInterrupt; |
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// Use the default iResult() implmentation |
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iResult = &DBMLChannel::Result; |
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iInterruptThread = iKernelThread; |
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iStarted = ETrue; |
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Kern::ThreadResume(*iKernelThread); |
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return KErrNone; |
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} |
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TInt DBMLChannel::KernelPreemptionLatencyThreadEntry(TAny* ptr) |
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{ |
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DBMLChannel* lCh = (DBMLChannel*) ptr; |
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lCh->KernelPreemptionLatencyThread(); |
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BM_ASSERT(0); |
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return 0; |
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} |
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void DBMLChannel::KernelPreemptionLatencyThread() |
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{ |
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for(;;) |
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{ |
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NKern::WaitForAnyRequest(); |
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if(iKernelThreadExitSemaphore) |
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break; |
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TBMTicks now = PChannel()->TimerStamp(); |
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iTime = Delta(iTime, now); |
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BM_ASSERT(iUserThread); |
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NKern::ThreadRequestSignal(&iUserThread->iNThread); |
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} |
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NKern::FSSignal(iKernelThreadExitSemaphore); |
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Kern::Exit(0); |
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} |
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394 |
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// |
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// "USER THREAD PREEMPTION LATENCY" |
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// |
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// SCENARIO: |
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399 |
// |
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// A user thread requests an interrupt (RBMChannel::RequestInterrupt()) and waits at User::WaitForAnyRequest() |
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// (RBMChannel::Result()). |
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// When the interrupt occurs DBMLChannel::Isr() stores the ISR entry time provided by LDD, |
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// in DBMLChannel::iTime and queues a DFC (DBMLChannel::iDfc, DBMLChannel::Dfc()) which in its turn |
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// signals the user thread. |
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// The user thread, when awaken, immediately re-enters in the LDD, and calculates the latency as |
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// the difference between the ISR entry time and the current time. |
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407 |
// |
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408 |
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409 |
TInt DBMLChannel::StartUserPreemptionLatency() |
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410 |
{ |
|
411 |
if (iStarted) |
|
412 |
{ |
|
413 |
return KErrInUse; |
|
414 |
} |
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415 |
TInt r = PChannel()->BindInterrupt((MBMIsr*) this); |
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416 |
if (r != KErrNone) |
|
417 |
{ |
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418 |
return r; |
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419 |
} |
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420 |
// Default iRequestInterrupt() implmentation |
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iRequestInterrupt = &DBMLChannel::RequestInterrupt; |
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iResult = &DBMLChannel::UserPreemptionLatencyResult; |
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iInterruptThread = &Kern::CurrentThread(); |
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iStarted = ETrue; |
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return KErrNone; |
|
426 |
} |
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427 |
||
428 |
TBMTicks DBMLChannel::UserPreemptionLatencyResult() |
|
429 |
{ |
|
430 |
TBMTicks now = PChannel()->TimerStamp(); |
|
431 |
return Delta(iTime, now); |
|
432 |
} |
|
433 |
||
434 |
// |
|
435 |
// "NTimer PERIOD JITTER" |
|
436 |
// |
|
437 |
// SCENARIO: |
|
438 |
// |
|
439 |
// One measuremnt is done by two consecutive NTimer callbacks. |
|
440 |
// The first callback stores the current time and the second one calculate the actual period as |
|
441 |
// the difference between its own current time and the time stored by the first callback. |
|
442 |
// The difference between this actual period and the theoretical period is considered as the jitter. |
|
443 |
// |
|
444 |
||
445 |
TInt DBMLChannel::StartNTimerJitter() |
|
446 |
{ |
|
447 |
if (iStarted) |
|
448 |
{ |
|
449 |
return KErrInUse; |
|
450 |
} |
|
451 |
new (&iNTimer) NTimer(&NTimerJitterCallBack, this); |
|
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iRequestInterrupt = &DBMLChannel::RequestNTimerJitterInterrupt; |
|
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// Use the default iResult() implmentation |
|
454 |
iResult = &DBMLChannel::Result; |
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iInterruptThread = &Kern::CurrentThread(); |
|
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iStarted = ETrue; |
|
457 |
return KErrNone; |
|
458 |
} |
|
459 |
||
460 |
TInt DBMLChannel::RequestNTimerJitterInterrupt() |
|
461 |
{ |
|
462 |
if (!iStarted) |
|
463 |
{ |
|
464 |
return KErrNotReady; |
|
465 |
} |
|
466 |
if (iPendingInterruptRequest) |
|
467 |
{ |
|
468 |
return KErrInUse; |
|
469 |
} |
|
470 |
iPendingInterruptRequest = ETrue; |
|
471 |
iNTimerShotCount = 0; |
|
472 |
iNTimer.OneShot(1); |
|
473 |
return KErrNone; |
|
474 |
} |
|
475 |
||
476 |
||
477 |
void DBMLChannel::NTimerJitterCallBack(TAny* ptr) |
|
478 |
{ |
|
479 |
DBMLChannel* lCh = (DBMLChannel*) ptr; |
|
480 |
TBMTicks now = lCh->PChannel()->TimerStamp(); |
|
481 |
if (lCh->iNTimerShotCount++ == 0) |
|
482 |
{ |
|
483 |
// |
|
484 |
// This is the first callback: store the time and request another one. |
|
485 |
// |
|
486 |
lCh->iTime = now; |
|
487 |
lCh->iNTimer.Again(1); |
|
488 |
} |
|
489 |
else |
|
490 |
{ |
|
491 |
// |
|
492 |
// This is the second callback: measure the jitter and schedule a DFC |
|
493 |
// which in its turn will signal the user thread. |
|
494 |
// |
|
495 |
lCh->iTime = lCh->Delta(lCh->iTime, now); |
|
496 |
lCh->iDfc.Add(); |
|
497 |
} |
|
498 |
} |
|
499 |
||
500 |
// |
|
501 |
// "TIMER OVERHEAD" |
|
502 |
// |
|
503 |
// SCENARIO: |
|
504 |
// To measure the overhead of the high-precision timer read operation we get |
|
505 |
// two consecutive timestamps through DBMPChannel::TimerStamp() interface. |
|
506 |
// The difference beween this two values is considered as the measured overhead. |
|
507 |
// |
|
508 |
||
509 |
TInt DBMLChannel::StartTimerStampOverhead() |
|
510 |
{ |
|
511 |
if (iStarted) |
|
512 |
{ |
|
513 |
return KErrInUse; |
|
514 |
} |
|
515 |
iRequestInterrupt = &DBMLChannel::RequestTimerStampOverhead; |
|
516 |
// Use the default iResult() implmentation |
|
517 |
iResult = &DBMLChannel::Result; |
|
518 |
iInterruptThread = &Kern::CurrentThread(); |
|
519 |
iStarted = ETrue; |
|
520 |
return KErrNone; |
|
521 |
} |
|
522 |
||
523 |
TInt DBMLChannel::RequestTimerStampOverhead() |
|
524 |
{ |
|
525 |
TBMTicks t1 = PChannel()->TimerStamp(); |
|
526 |
TBMTicks t2 = PChannel()->TimerStamp(); |
|
527 |
iTime = Delta(t1, t2); |
|
528 |
NKern::ThreadRequestSignal(&iInterruptThread->iNThread); |
|
529 |
return KErrNone; |
|
530 |
} |
|
531 |
// |
|
532 |
// END OF "GETTING TIMER OVERHEAD" |
|
533 |
// |
|
534 |
||
535 |
// |
|
39
2bb754abd467
Revision: 201025
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
536 |
// The implementation of RBMDriver::SetAbsPriority() call. |
0 | 537 |
// |
39
2bb754abd467
Revision: 201025
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
538 |
TInt DBMLChannel::SetAbsPriority(TInt aThreadHandle, TInt aNewPrio, TInt* aOldPrio) |
0 | 539 |
{ |
540 |
NKern::LockSystem(); |
|
541 |
// |
|
542 |
// Under the system lock find the DThread object and increment its ref-count (i.e Open()) |
|
543 |
// |
|
544 |
DThread* thr = (DThread*) Kern::ObjectFromHandle(&Kern::CurrentThread(), aThreadHandle, EThread); |
|
545 |
TInt r; |
|
546 |
if (!thr) |
|
547 |
{ |
|
548 |
r = EBadHandle; |
|
549 |
} |
|
550 |
else |
|
551 |
{ |
|
552 |
r = thr->Open(); |
|
553 |
} |
|
554 |
// |
|
555 |
// Now it's safe to release the system lock and to work with the object. |
|
556 |
// |
|
557 |
NKern::ThreadEnterCS(); |
|
558 |
NKern::UnlockSystem(); |
|
559 |
if (r != KErrNone) |
|
560 |
{ |
|
561 |
NKern::ThreadLeaveCS(); |
|
562 |
return r; |
|
563 |
} |
|
564 |
*aOldPrio = thr->iDefaultPriority; |
|
565 |
Kern::SetThreadPriority(aNewPrio, thr); |
|
566 |
// |
|
567 |
// Work is done - close the object. |
|
568 |
// |
|
569 |
thr->Close(NULL); |
|
570 |
NKern::ThreadLeaveCS(); |
|
571 |
return KErrNone; |
|
572 |
} |
|
573 |
||
574 |
_LIT(KBmDfcQName, "BmDfcQ"); |
|
575 |
||
576 |
// |
|
577 |
// Starts a new sequence of measurements. |
|
578 |
// |
|
579 |
// Only one sequence can be started for any particular DBMLChannel object during its life. |
|
580 |
// If more than one sequence is required a new DBMLChannel object must be created. |
|
581 |
// |
|
582 |
TInt DBMLChannel::Start(RBMChannel::TMode aMode) |
|
583 |
{ |
|
584 |
TInt r; |
|
585 |
if (iDfcQ == NULL) |
|
586 |
{ |
|
587 |
r = Kern::DynamicDfcQCreate(iDfcQ, KBMDfcQThreadPriority, KBmDfcQName); |
|
588 |
if (r != KErrNone) |
|
589 |
return r; |
|
590 |
||
591 |
iDfc.SetDfcQ(iDfcQ); |
|
592 |
iDfc.SetFunction(Dfc); |
|
593 |
} |
|
594 |
||
595 |
switch (aMode) |
|
596 |
{ |
|
597 |
case RBMChannel::EInterruptLatency: |
|
598 |
r = StartInterruptLatency(); |
|
599 |
break; |
|
600 |
case RBMChannel::EKernelPreemptionLatency: |
|
601 |
r = StartKernelPreemptionLatency(); |
|
602 |
break; |
|
603 |
case RBMChannel::EUserPreemptionLatency: |
|
604 |
r = StartUserPreemptionLatency(); |
|
605 |
break; |
|
606 |
case RBMChannel::ENTimerJitter: |
|
607 |
r = StartNTimerJitter(); |
|
608 |
break; |
|
609 |
case RBMChannel::ETimerStampOverhead: |
|
610 |
r = StartTimerStampOverhead(); |
|
611 |
break; |
|
612 |
default: |
|
613 |
r = KErrNotSupported; |
|
614 |
break; |
|
615 |
} |
|
616 |
||
617 |
return r; |
|
618 |
} |
|
619 |
||
620 |
// |
|
621 |
// Client requests. |
|
622 |
// |
|
623 |
TInt DBMLChannel::Request(TInt aFunction, TAny* a1, TAny* a2) |
|
624 |
{ |
|
625 |
TInt r = KErrNone; |
|
626 |
switch (aFunction) |
|
627 |
{ |
|
628 |
case RBMChannel::EStart: |
|
629 |
{ |
|
630 |
RBMChannel::TMode mode = (RBMChannel::TMode) (TInt) a1; |
|
631 |
Lock(); |
|
632 |
r = Start(mode); |
|
633 |
Unlock(); |
|
634 |
break; |
|
635 |
} |
|
636 |
case RBMChannel::ERequestInterrupt: |
|
637 |
{ |
|
638 |
Lock(); |
|
639 |
r = (this->*iRequestInterrupt)(); |
|
640 |
Unlock(); |
|
641 |
break; |
|
642 |
} |
|
643 |
case RBMChannel::EResult: |
|
644 |
{ |
|
645 |
// |
|
646 |
// We don't acquire the lock because: |
|
647 |
// (1) iResult() typically reads iTime which was written BEFORE to signal the current thread |
|
648 |
// and therefore BEFORE the current thread comes here. |
|
649 |
// (2) we really want if possible (i.e. correct!) to avoid the lock acquisition because it can |
|
650 |
// increase the measurement overhead in the case when we are in a measured path (e.g. user |
|
651 |
// preemption latency benchmark). |
|
652 |
// |
|
653 |
TBMTicks ticks = (this->*iResult)(); |
|
654 |
umemput(a1, &ticks, sizeof(ticks)); |
|
655 |
break; |
|
656 |
} |
|
657 |
// |
|
658 |
// All below requests do not access writable DBMChannel state and therefore do not require the lock |
|
659 |
// |
|
660 |
case RBMChannel::ETimerStamp: |
|
661 |
{ |
|
662 |
TBMTicks ticks = PChannel()->TimerStamp(); |
|
663 |
umemput(a1, &ticks, sizeof(ticks)); |
|
664 |
break; |
|
665 |
} |
|
666 |
case RBMChannel::ETimerPeriod: |
|
667 |
{ |
|
668 |
TBMTicks ticks = iTimerPeriod; |
|
669 |
umemput(a1, &ticks, sizeof(ticks)); |
|
670 |
break; |
|
671 |
} |
|
672 |
case RBMChannel::ETimerTicksToNs: |
|
673 |
{ |
|
674 |
TBMTicks ticks; |
|
675 |
umemget(&ticks, a1, sizeof(ticks)); |
|
676 |
TBMNs ns = PChannel()->TimerTicksToNs(ticks); |
|
677 |
umemput(a2, &ns, sizeof(ns)); |
|
678 |
break; |
|
679 |
} |
|
680 |
case RBMChannel::ETimerNsToTicks: |
|
681 |
{ |
|
682 |
TBMNs ns; |
|
683 |
umemget(&ns, a1, sizeof(ns)); |
|
684 |
TBMTicks ticks = PChannel()->TimerNsToTicks(ns); |
|
685 |
umemput(a2, &ticks, sizeof(ticks)); |
|
686 |
break; |
|
687 |
} |
|
688 |
case RBMChannel::ESetAbsPriority: |
|
689 |
{ |
|
690 |
TInt newPrio; |
|
691 |
TInt oldPrio; |
|
692 |
umemget(&newPrio, a2, sizeof(newPrio)); |
|
39
2bb754abd467
Revision: 201025
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
693 |
r = SetAbsPriority((TInt) a1, newPrio, &oldPrio); |
0 | 694 |
umemput(a2, &oldPrio, sizeof(oldPrio)); |
695 |
break; |
|
696 |
} |
|
697 |
default: |
|
698 |
r = KErrNotSupported; |
|
699 |
break; |
|
700 |
} |
|
701 |
return r; |
|
702 |
} |
|
703 |
||
704 |