author | Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com> |
Tue, 06 Jul 2010 15:50:07 +0300 | |
changeset 201 | 43365a9b78a3 |
parent 90 | 947f0dc9f7a8 |
child 257 | 3e88ff8f41d5 |
permissions | -rw-r--r-- |
0 | 1 |
// Copyright (c) 2006-2009 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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// e32\nkernsmp\dfcs.cpp |
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// DFCs |
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// |
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// |
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// NThreadBase member data |
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#define __INCLUDE_NTHREADBASE_DEFINES__ |
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// TDfc member data |
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#define __INCLUDE_TDFC_DEFINES__ |
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#include "nk_priv.h" |
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extern "C" void send_self_resched_ipi(); |
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||
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/** Construct an IDFC |
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@param aFunction = function to call |
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@param aPtr = parameter to be passed to function |
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*/ |
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EXPORT_C TDfc::TDfc(TDfcFn aFunction, TAny* aPtr) |
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{ |
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iPtr = aPtr; |
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iFn = aFunction; |
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iTied = 0; |
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iHType = EEventHandlerIDFC; |
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i8888.iHState0 = 0; |
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i8888.iHState1 = 0; |
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i8888.iHState2 = 0; |
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iTiedLink.iNext = 0; |
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} |
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/** Construct an IDFC tied to a thread or group |
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@param aTied = pointer to thread or group to which IDFC should be tied |
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@param aFunction = function to call |
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@param aPtr = parameter to be passed to function |
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@pre Call in thread context, interrupts enabled |
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*/ |
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EXPORT_C TDfc::TDfc(NSchedulable* aTied, TDfcFn aFunction, TAny* aPtr) |
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{ |
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iPtr = aPtr; |
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iFn = aFunction; |
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iTied = 0; |
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iHType = EEventHandlerIDFC; |
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i8888.iHState0 = 0; |
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i8888.iHState1 = 0; |
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i8888.iHState2 = 0; |
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iTiedLink.iNext = 0; |
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if (aTied) |
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{ |
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SetTied(aTied); |
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} |
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} |
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/** Construct a DFC without specifying a DFC queue. |
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The DFC queue must be set before the DFC may be queued. |
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@param aFunction = function to call |
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@param aPtr = parameter to be passed to function |
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@param aPriority = priority of DFC within the queue (0 to 7, where 7 is highest) |
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*/ |
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EXPORT_C TDfc::TDfc(TDfcFn aFunction, TAny* aPtr, TInt aPriority) |
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{ |
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__NK_ASSERT_DEBUG((TUint)aPriority<(TUint)KNumDfcPriorities); |
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iPtr = aPtr; |
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iFn = aFunction; |
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iTied = 0; |
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iHType = TUint8(aPriority); |
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i8888.iHState0 = 0; |
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i8888.iHState1 = 0; |
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i8888.iHState2 = 0; |
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iTiedLink.iNext = 0; |
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} |
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/** Construct a DFC specifying a DFC queue. |
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@param aFunction = function to call |
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@param aPtr = parameter to be passed to function |
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@param aDfcQ = pointer to DFC queue which this DFC should use |
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@param aPriority = priority of DFC within the queue (0-7) |
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*/ |
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EXPORT_C TDfc::TDfc(TDfcFn aFunction, TAny* aPtr, TDfcQue* aDfcQ, TInt aPriority) |
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{ |
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__NK_ASSERT_DEBUG((TUint)aPriority<(TUint)KNumDfcPriorities); |
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iPtr = aPtr; |
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iFn = aFunction; |
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iDfcQ = aDfcQ; |
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iHType = TUint8(aPriority); |
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i8888.iHState0 = 0; |
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i8888.iHState1 = 0; |
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i8888.iHState2 = 0; |
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iTiedLink.iNext = 0; |
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} |
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/** Tie an IDFC to a thread or group |
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@param aTied = pointer to thread or group to which IDFC should be tied |
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@return KErrNone if successful |
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@return KErrDied if thread has exited or group has been destroyed. |
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@pre Call in thread context, interrupts enabled |
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@pre Must be IDFC not DFC |
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@pre IDFC must not be queued or running |
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@pre IDFC must not already be tied |
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*/ |
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EXPORT_C TInt TDfc::SetTied(NSchedulable* aTied) |
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{ |
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__NK_ASSERT_ALWAYS(IsIDFC() && i8816.iHState16==0); |
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__NK_ASSERT_ALWAYS(aTied && !iTied); |
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NKern::Lock(); |
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TInt r = aTied->AddTiedEvent(this); |
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__NK_ASSERT_ALWAYS(r==KErrNone || r==KErrDied); |
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NKern::Unlock(); |
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return r; |
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} |
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/** Destroy a DFC or IDFC |
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@pre Call from thread context with interrupts and preemption enabled |
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@pre Calling thread holds no fast mutex |
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@pre Calling thread in critical section |
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*/ |
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EXPORT_C TDfc::~TDfc() |
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{ |
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CHECK_PRECONDITIONS(MASK_THREAD_CRITICAL,"TDfc::~TDfc"); |
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NKern::Lock(); |
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NEventHandler::TiedLock.LockOnly(); |
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NSchedulable* tied = iTied; |
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if (IsDFC() || (IsIDFC() && !tied)) |
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{ |
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Cancel(); |
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iHType = (TUint8)EEventHandlerDummy; |
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} |
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if (IsIDFC()) |
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{ |
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__NK_ASSERT_ALWAYS(tied!=0); |
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tied->AcqSLock(); |
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if (iTiedLink.iNext) |
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{ |
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iTiedLink.Deque(); |
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iTiedLink.iNext = 0; |
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} |
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tied->RelSLock(); |
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Cancel(); |
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iHType = (TUint8)EEventHandlerDummy; |
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iTied = 0; |
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} |
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NEventHandler::TiedLock.UnlockOnly(); |
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NKern::Unlock(); |
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} |
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/** Construct a DFC queue |
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Kern::DfcQInit() should be called on the new DFC queue before it can be used. |
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*/ |
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EXPORT_C TDfcQue::TDfcQue() |
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: iThread(NULL) |
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{} |
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/** Queue an IDFC or a DFC from an ISR |
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This function is the only way to queue an IDFC and is the only way to queue |
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a DFC from an ISR. To queue a DFC from an IDFC or a thread either Enque() |
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or DoEnque() should be used. |
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This function does nothing if the IDFC/DFC is already queued. |
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@pre Call only from ISR, IDFC or thread with preemption disabled. |
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@pre Do not call from thread with preemption enabled. |
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@return TRUE if DFC was actually queued by this call |
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FALSE if DFC was already queued on entry so this call did nothing |
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@see TDfc::DoEnque() |
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@see TDfc::Enque() |
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*/ |
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EXPORT_C TBool TDfc::Add() |
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{ |
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__ASSERT_DEBUG(NKern::CurrentContext()!=NKern::EThread || NKern::KernelLocked(), *(int*)0xdfcadd01=0); |
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__ASSERT_DEBUG(IsIDFC() || (IsDFC() && iDfcQ), *(int*)0xdfcadd03=0); |
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// __ASSERT_WITH_MESSAGE_DEBUG( NKern::CurrentContext()!=NKern::EThread || NKern::KernelLocked(),"Do not call from thread with preemption enabled","TDfc::Add"); |
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// __ASSERT_WITH_MESSAGE_DEBUG( IsIDFC() || (IsDFC() && iDfcQ), "DFC queue not set", "TDfc::Add"); |
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#ifdef __WINS__ |
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__NK_ASSERT_ALWAYS(Interrupt.InInterrupt() || NKern::KernelLocked()); |
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#endif |
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TInt irq = NKern::DisableAllInterrupts(); |
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TSubScheduler& ss = SubScheduler(); |
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TUint32 orig = 0xFF00; |
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// Transition the state to 'on normal IDFC queue' |
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// 0000->008n |
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// 00Cn->00En |
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// All other states unchanged |
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// Return original state |
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if (IsValid()) // don't add if tied and tied thread/group is being/has been destroyed |
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orig = AddStateChange(); |
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if (orig==0) |
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{ |
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// wasn't already queued |
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i8888.iHState0 = 0; // BeginTiedEvent() not done |
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ss.iDfcs.Add(this); |
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ss.iDfcPendingFlag = 1; |
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#ifdef _DEBUG |
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TUint32 st8 = DFC_STATE(this) & 0xFF; |
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if (st8 != (0x80|ss.iCpuNum)) |
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__crash(); |
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#endif |
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} |
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NKern::RestoreInterrupts(irq); |
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return (orig==0 || (orig&0xFFE0)==0x00C0); |
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} |
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/** Queue an IDFC or a DFC from any context |
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This function is identical to TDfc::Add() but no checks are performed for correct usage, |
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and it contains no instrumentation code. |
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@return TRUE if DFC was actually queued by this call |
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FALSE if DFC was already queued on entry so this call did nothing |
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@see TDfc::DoEnque() |
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@see TDfc::Enque() |
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@see TDfc::Add() |
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*/ |
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EXPORT_C TBool TDfc::RawAdd() |
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{ |
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TInt irq = NKern::DisableAllInterrupts(); |
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TSubScheduler& ss = SubScheduler(); |
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TUint32 orig = 0xFF00; |
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if (IsValid()) // don't add if tied and tied thread/group is being/has been destroyed |
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orig = AddStateChange(); |
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if (orig==0) |
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{ |
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// wasn't already queued |
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i8888.iHState0 = 0; // BeginTiedEvent() not done |
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ss.iDfcs.Add(this); |
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ss.iDfcPendingFlag = 1; |
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send_self_resched_ipi(); // ensure current CPU runs the DFC |
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#ifdef _DEBUG |
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TUint32 st8 = DFC_STATE(this) & 0xFF; |
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if (st8 != (0x80|ss.iCpuNum)) |
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__crash(); |
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#endif |
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// FIXME: Need to wait to ensure IRQ is active before reenabling interrupts |
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} |
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NKern::RestoreInterrupts(irq); |
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return (orig==0 || (orig&0xFFE0)==0x00C0); |
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} |
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/** Queue a DFC (not an IDFC) from an IDFC or thread with preemption disabled. |
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This function is the preferred way to queue a DFC from an IDFC. It should not |
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be used to queue an IDFC - use TDfc::Add() for this. |
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This function does nothing if the DFC is already queued. |
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@pre Call only from IDFC or thread with preemption disabled. |
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@pre Do not call from ISR or thread with preemption enabled. |
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@return TRUE if DFC was actually queued by this call |
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FALSE if DFC was already queued on entry so this call did nothing |
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@see TDfc::Add() |
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@see TDfc::Enque() |
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*/ |
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EXPORT_C TBool TDfc::DoEnque() |
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{ |
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__ASSERT_WITH_MESSAGE_DEBUG( (NKern::CurrentContext()==NKern::EIDFC )||( NKern::CurrentContext()==NKern::EThread && NKern::KernelLocked()),"Do not call from ISR or thread with preemption enabled","TDfc::DoEnque"); |
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__NK_ASSERT_DEBUG(IsDFC()); |
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__ASSERT_WITH_MESSAGE_DEBUG(iDfcQ, "DFC queue not set", "TDfc::DoEnque"); |
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// Check not already queued and then mark queued to prevent ISRs touching this DFC |
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TDfcQue* q = iDfcQ; |
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NThreadBase* t = q->iThread; |
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t->AcqSLock(); // also protects DFC queue |
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TUint16 expect = 0; |
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TBool ok = __e32_atomic_cas_acq16(&iDfcState, &expect, 1); |
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if (ok) |
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{ |
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// wasn't already queued, now marked as on final queue, which means |
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// attempts to cancel will block on the thread spin lock |
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TUint present = q->iPresent[0]; |
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q->Add((TPriListLink*)this); |
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if (!present) |
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t->iWaitState.UnBlockT(NThreadBase::EWaitDfc, q, KErrNone); |
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} |
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t->RelSLock(); // also protects DFC queue |
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return ok; |
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} |
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void TDfcQue::ThreadFunction(TAny* aDfcQ) |
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{ |
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TDfcQue& q = *(TDfcQue*)aDfcQ; |
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NThreadBase* t = NKern::CurrentThread(); |
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FOREVER |
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{ |
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NKern::Lock(); |
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t->AcqSLock(); // also protects DFC queue |
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if (q.IsEmpty()) |
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{ |
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t->iWaitState.SetUpWait(NThreadBase::EWaitDfc, 0, &q); |
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RescheduleNeeded(); |
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t->RelSLock(); // also protects DFC queue |
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NKern::Unlock(); |
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} |
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else |
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{ |
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330 |
TDfc* d = q.First(); |
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q.Remove((TPriListLink*)d); |
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TDfcFn f = d->iFn; |
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TAny* p = d->iPtr; |
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d->ResetState(); |
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t->RelSLock(); // also protects DFC queue |
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NKern::Unlock(); |
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(*f)(p); |
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338 |
} |
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} |
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} |
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341 |
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342 |
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343 |
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void TCancelIPI::Send(TDfc* aDfc, TInt aCpu) |
|
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{ |
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iDfc = aDfc; |
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Queue(&Isr, 1u<<aCpu); |
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348 |
} |
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349 |
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350 |
void TCancelIPI::Isr(TGenericIPI* aIPI) |
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351 |
{ |
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352 |
TCancelIPI* p = (TCancelIPI*)aIPI; |
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TDfc* d = p->iDfc; |
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if (d->iNext) |
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{ |
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356 |
// QueueDfcs() hasn't dequeued it yet |
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// just dequeue it here and reset the state - QueueDfcs() will never see it |
|
358 |
// Note that this means we have to release the tied thread/group if necessary |
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359 |
// BeginTiedEvent() has occurred if iHState0 is set and it's actually an IDFC not an NTimer |
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NSchedulable* tied = (d->iHType==NEventHandler::EEventHandlerIDFC && d->i8888.iHState0) ? d->iTied : 0; |
|
361 |
d->Deque(); |
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362 |
d->ResetState(); |
|
363 |
if (tied) |
|
364 |
tied->EndTiedEvent(); |
|
365 |
} |
|
366 |
else |
|
367 |
{ |
|
368 |
// QueueDfcs() has already dequeued it |
|
369 |
// state transition: |
|
370 |
// XXYY->XX00 |
|
371 |
// XX00->0000 |
|
372 |
// QueueDfcs() will take care of the tied thread/group |
|
373 |
d->CancelFinalStateChange(); |
|
374 |
} |
|
375 |
} |
|
376 |
||
377 |
||
378 |
/** Cancels an IDFC or DFC. |
|
379 |
||
380 |
This function does nothing if the IDFC or DFC is not queued. |
|
381 |
||
382 |
For any DFC or IDFC the following identity holds: |
|
383 |
Number of times Add() is called and returns TRUE |
|
384 |
+ Number of times DoEnque() is called and returns TRUE |
|
385 |
+ Number of times Enque() is called and returns TRUE |
|
386 |
+ Number of times QueueOnIdle() is called and returns TRUE |
|
387 |
= Number of times Cancel() is called and returns TRUE |
|
388 |
+ Number of times the DFC/IDFC function executes |
|
389 |
||
390 |
@pre IDFC or thread context. Do not call from ISRs. |
|
391 |
||
392 |
@pre If the DFC function accesses the DFC object itself, the user must ensure that |
|
393 |
Cancel() cannot be called while the DFC function is running. |
|
394 |
||
395 |
@return TRUE if the DFC was actually dequeued by this call - i.e. an |
|
396 |
instance of the DFC's execution has been prevented. It |
|
397 |
is still possible that a previous execution is still in |
|
398 |
progress. |
|
399 |
FALSE if the DFC was not queued on entry to the call, or was in |
|
400 |
the process of being executed or cancelled. In this case |
|
401 |
it is possible that the DFC executes after this call |
|
402 |
returns. |
|
403 |
||
404 |
@post However in either case it is safe to delete the DFC object on |
|
405 |
return from this call provided only that the DFC function does not |
|
406 |
refer to the DFC object itself. |
|
407 |
*/ |
|
408 |
EXPORT_C TBool TDfc::Cancel() |
|
409 |
{ |
|
410 |
enum TAction { EDeque=1, EReset=2, EIdleUnlock=4, ESendIPI=8, EWait=16 }; |
|
411 |
||
412 |
CHECK_PRECONDITIONS(MASK_NOT_ISR|MASK_INTERRUPTS_ENABLED,"TDfc::Cancel"); |
|
413 |
if (!iDfcState) |
|
414 |
return FALSE; |
|
415 |
TUint action = EIdleUnlock; |
|
416 |
TBool ret = FALSE; |
|
417 |
TInt cpu = -1; |
|
418 |
NSchedulable* tied = 0; |
|
419 |
TDfcQue* q = 0; |
|
420 |
NThreadBase* t = 0; |
|
421 |
NKern::Lock(); |
|
422 |
TSubScheduler& ss0 = SubScheduler(); |
|
423 |
if (IsDFC()) |
|
424 |
q = iDfcQ, t = q->iThread, t->AcqSLock(); |
|
425 |
TInt irq = NKern::DisableAllInterrupts(); |
|
426 |
TheScheduler.iIdleSpinLock.LockOnly(); |
|
427 |
||
428 |
// 0000->0000, XX00->ZZ00, xxYY->zzYY |
|
429 |
TUint state = CancelInitialStateChange(); |
|
430 |
TUint stt = state >> 5; |
|
431 |
if (state & 0xFF00) |
|
432 |
{ |
|
433 |
// someone else cancelling at the same time - just wait for them to finish |
|
434 |
action = EWait|EIdleUnlock; |
|
435 |
goto end; |
|
436 |
} |
|
437 |
if (state == 0) // DFC not active |
|
438 |
goto end; |
|
439 |
||
440 |
// possible states here are 0001, 002g, 006m, 008m, 00Am, 00Cm, 00Em |
|
441 |
ret = (stt!=6); // if running but not pending, Cancel() will not have prevented an execution |
|
442 |
if (state == TUint(TheScheduler.iIdleGeneration | 0x20)) |
|
443 |
{ |
|
444 |
// was on idle queue, BeginTiedEvent() isn't called until QueueDfcs() runs |
|
445 |
action = EDeque|EReset|EIdleUnlock; |
|
446 |
goto end; |
|
447 |
} |
|
448 |
if (state == 1) |
|
449 |
{ |
|
450 |
// was on final queue, must be DFC not IDFC |
|
451 |
q->Remove((TPriListLink*)this); |
|
452 |
action = EReset|EIdleUnlock; |
|
453 |
goto end; |
|
454 |
} |
|
455 |
||
456 |
// possible states here are 002g (spilled), 006m, 008m, 00Am, 00Cm, 00Em |
|
457 |
// i.e. either on IDFC queue, ExIDFC queue or running |
|
458 |
// For IDFCs, tied thread/group is now in play. |
|
459 |
cpu = state & 0x1f; // CPU it's on for states 006m, 008m, 00Am, 00Cm, 00Em |
|
460 |
if (stt==3 || stt==6 || stt==7) |
|
461 |
{ |
|
462 |
// It's actually running - must be IDFC. A re-queue may also be pending. |
|
463 |
TheScheduler.iIdleSpinLock.UnlockOnly(); |
|
464 |
TSubScheduler* ss = TheSubSchedulers + cpu; |
|
465 |
TDfc* expect = this; |
|
466 |
TBool done = __e32_atomic_cas_acq_ptr(&ss->iCurrentIDFC, &expect, 0); |
|
467 |
if (done) |
|
468 |
{ |
|
469 |
// We cleared iCurrentIDFC so QueueDfcs() won't touch this again - we reset the state and finish up |
|
470 |
// We must also release the tied thread/group |
|
471 |
tied = iTied; |
|
472 |
action = EReset; |
|
473 |
goto end; |
|
474 |
} |
|
475 |
// QueueDfcs() got to iCurrentIDFC before we did, so we interlock with it |
|
476 |
// and we can leave the EndTiedEvent to it as well |
|
477 |
// State transition: |
|
478 |
// XXAm->XX00, wait |
|
479 |
// XX00->0000, don't wait |
|
480 |
TUint32 orig = CancelFinalStateChange() & 0xFF; |
|
481 |
__NK_ASSERT_ALWAYS(orig==0 || orig==state); |
|
482 |
action = orig ? EWait : 0; |
|
483 |
goto end; |
|
484 |
} |
|
485 |
||
486 |
// possible states here 002g (propagated), 008m, 00Am so it's either on the endogenous or exogenous IDFC queue |
|
487 |
if (stt==5) |
|
488 |
{ |
|
489 |
// it's on the exogenous IDFC queue |
|
490 |
TheScheduler.iIdleSpinLock.UnlockOnly(); |
|
491 |
TSubScheduler* ss = TheSubSchedulers + cpu; |
|
492 |
ss->iExIDfcLock.LockOnly(); |
|
493 |
if (iNext) |
|
494 |
{ |
|
495 |
// we got to it before QueueDfcs() on the other CPU so we can finish up here |
|
496 |
// QueueDfcs() will never see it again so we must release tied thread/group |
|
497 |
Deque(); |
|
498 |
tied = iTied; |
|
499 |
ss->iExIDfcLock.UnlockOnly(); |
|
500 |
action = EReset; |
|
501 |
goto end; |
|
502 |
} |
|
503 |
// QueueDfcs() on other CPU has already dequeued it - we must now interlock with RunIDFCStateChange() |
|
504 |
ss->iExIDfcLock.UnlockOnly(); |
|
505 |
// State transition: |
|
506 |
// XXAm->XX00, wait |
|
507 |
// XX00->0000, don't wait |
|
508 |
// QueueDfcs() will take care of tied thread/group |
|
509 |
TUint32 orig = CancelFinalStateChange() & 0xFF; |
|
510 |
__NK_ASSERT_ALWAYS(orig==0 || orig==state); |
|
511 |
action = orig ? EWait : 0; |
|
512 |
goto end; |
|
513 |
} |
|
514 |
||
515 |
// possible states here 002g (propagated idle) or 008m (IDFC or DFC on endogenous DFC queue) |
|
516 |
if (stt==1) // propagated idle |
|
517 |
cpu = TheScheduler.iIdleSpillCpu; |
|
518 |
||
519 |
// if it's on this CPU's IDFC queue we can just remove it and reset the state here |
|
520 |
// otherwise we send a cancel IPI to the CPU it's on |
|
521 |
// We are guaranteed to dequeue the DFC before it executes since the |
|
522 |
// QueueDfcs() on the target CPU will notice that a cancel is in progress and |
|
523 |
// so will not run the DFC even if it dequeues it. |
|
524 |
// QueueDfcs() takes care of the tied thread/group if it sees the DFC/IDFC again, otherwise |
|
525 |
// we must do it here. |
|
526 |
if (TUint(cpu) == ss0.iCpuNum) |
|
527 |
{ |
|
528 |
if (IsIDFC()) |
|
529 |
tied = iTied; |
|
530 |
action = EDeque|EReset|EIdleUnlock; |
|
531 |
} |
|
532 |
else |
|
533 |
action = EIdleUnlock|ESendIPI|EWait; |
|
534 |
||
535 |
end: |
|
536 |
// Common exit point |
|
537 |
if (action & EDeque) |
|
538 |
Deque(); |
|
539 |
if (action & EReset) |
|
540 |
{ |
|
541 |
ResetState(); |
|
542 |
} |
|
543 |
if (action & EIdleUnlock) |
|
544 |
TheScheduler.iIdleSpinLock.UnlockOnly(); |
|
545 |
NKern::RestoreInterrupts(irq); |
|
546 |
if (t) |
|
547 |
t->RelSLock(); |
|
548 |
||
549 |
// on another CPU's IDFC queue so send IPI to remove it |
|
550 |
if (action & ESendIPI) |
|
551 |
{ |
|
552 |
TCancelIPI ipi; |
|
553 |
ipi.Send(this, cpu); |
|
554 |
ipi.WaitCompletion(); |
|
555 |
tied = 0; |
|
556 |
} |
|
557 |
||
558 |
// wait for cancel to complete |
|
559 |
if (action & EWait) |
|
560 |
{ |
|
561 |
TUint n = 0x01000000; |
|
562 |
while ((iDfcState>>8) & ss0.iCpuMask) |
|
563 |
{ |
|
564 |
__chill(); |
|
565 |
if (!--n) |
|
566 |
__crash(); |
|
567 |
} |
|
568 |
} |
|
569 |
||
570 |
// release tied thread/group if waiting for IDFC to complete |
|
571 |
if (tied) |
|
572 |
tied->EndTiedEvent(); |
|
573 |
NKern::Unlock(); |
|
574 |
return ret; |
|
575 |
} |
|
576 |
||
577 |
||
578 |
/** Queues a DFC (not an IDFC) from a thread. |
|
579 |
||
580 |
Does nothing if DFC is already queued. |
|
581 |
||
582 |
NOTE: Although this can be called in an IDFC context, it is more efficient to call |
|
583 |
DoEnque() in this case. |
|
584 |
||
585 |
@pre Call either in a thread or an IDFC context. |
|
586 |
@pre Do not call from an ISR. |
|
587 |
@return TRUE if DFC was actually queued by this call |
|
588 |
FALSE if DFC was already queued on entry so this call did nothing |
|
589 |
*/ |
|
590 |
EXPORT_C TBool TDfc::Enque() |
|
591 |
{ |
|
592 |
CHECK_PRECONDITIONS(MASK_NOT_ISR,"TDfc::Enque()"); |
|
593 |
NKern::Lock(); |
|
594 |
TBool ret = DoEnque(); |
|
595 |
NKern::Unlock(); |
|
596 |
return ret; |
|
597 |
} |
|
598 |
||
599 |
||
600 |
/** Queue a DFC (not an IDFC) from a thread and also signals a fast mutex. |
|
601 |
||
602 |
The DFC is unaffected if it is already queued. |
|
603 |
||
604 |
The fast mutex is signalled before preemption is reenabled to avoid potential |
|
605 |
scheduler thrashing. |
|
606 |
||
607 |
@param aMutex = pointer to fast mutex to be signalled; |
|
608 |
NULL means system lock mutex. |
|
609 |
@return TRUE if DFC was actually queued by this call |
|
610 |
FALSE if DFC was already queued on entry so this call did nothing |
|
611 |
@pre Call in a thread context. |
|
612 |
@pre Kernel must be unlocked. |
|
613 |
@pre Do not call from an ISR. |
|
614 |
@pre Do not call from an IDFC. |
|
615 |
*/ |
|
616 |
EXPORT_C TBool TDfc::Enque(NFastMutex* aMutex) |
|
617 |
{ |
|
618 |
CHECK_PRECONDITIONS(MASK_KERNEL_UNLOCKED|MASK_NOT_ISR|MASK_NOT_IDFC,"TDfc::Enque(NFastMutex* aMutex)"); |
|
619 |
if (!aMutex) |
|
620 |
aMutex=&TheScheduler.iLock; |
|
621 |
NKern::Lock(); |
|
622 |
TBool ret = DoEnque(); |
|
623 |
aMutex->Signal(); |
|
624 |
NKern::Unlock(); |
|
625 |
return ret; |
|
626 |
} |
|
627 |
||
628 |
||
629 |
/** Returns a pointer to the thread on which a DFC runs |
|
630 |
||
631 |
@return If this is a DFC and the DFC queue has been set, a pointer to the |
|
632 |
thread which will run the DFC. |
|
633 |
NULL if this is an IDFC or the DFC queue has not been set. |
|
634 |
*/ |
|
635 |
EXPORT_C NThreadBase* TDfc::Thread() |
|
636 |
{ |
|
637 |
if (!IsDFC()) |
|
638 |
return 0; |
|
639 |
return iDfcQ ? iDfcQ->iThread : 0; |
|
640 |
} |
|
641 |
||
642 |
||
643 |
/****************************************************************************** |
|
644 |
* Idle notification |
|
645 |
******************************************************************************/ |
|
646 |
||
647 |
/** Register an IDFC or a DFC to be called when the system goes idle |
|
648 |
||
649 |
This function does nothing if the IDFC/DFC is already queued. |
|
650 |
||
651 |
@return TRUE if DFC was actually queued by this call |
|
652 |
FALSE if DFC was already queued on entry so this call did nothing |
|
653 |
*/ |
|
654 |
EXPORT_C TBool TDfc::QueueOnIdle() |
|
655 |
{ |
|
656 |
TInt irq = TheScheduler.iIdleSpinLock.LockIrqSave(); |
|
657 |
TUint32 orig = 0xFF00; |
|
658 |
||
659 |
// Transition the state to 'on normal idle queue' |
|
660 |
// 0000->002g |
|
661 |
// 00Cn->006n |
|
662 |
// All other states unchanged |
|
663 |
// Return original state |
|
664 |
if (IsValid()) // don't add if tied and tied thread/group is being/has been destroyed |
|
665 |
orig = QueueOnIdleStateChange(); |
|
666 |
if (orig==0) |
|
667 |
{ |
|
668 |
i8888.iHState0 = 0; // BeginTiedEvent() not done |
|
669 |
TheScheduler.iIdleDfcs.Add(this); |
|
670 |
} |
|
671 |
||
672 |
TheScheduler.iIdleSpinLock.UnlockIrqRestore(irq); |
|
673 |
return (orig==0 || (orig&0xFFE0)==0x00C0); |
|
674 |
} |
|
675 |
||
676 |
||
677 |
/****************************************************************************** |
|
678 |
* Scheduler IDFC/DFC Processing |
|
679 |
******************************************************************************/ |
|
680 |
||
681 |
void TSubScheduler::QueueDfcs() |
|
682 |
// |
|
683 |
// Enter with interrupts off and kernel locked |
|
684 |
// Leave with interrupts off and kernel locked |
|
685 |
// |
|
686 |
// In state descriptions: |
|
687 |
// XX=8 bits not all zero (bitmask representing cancelling CPUs) |
|
688 |
// xx=8 bits (bitmask representing cancelling CPUs) |
|
689 |
// YY=8 bits not all zero |
|
690 |
// ZZ=XX with an additional bit set corresponding to the current CPU |
|
691 |
// zz=xx with an additional bit set corresponding to the current CPU |
|
692 |
// n = current CPU number |
|
693 |
// m = another CPU number |
|
694 |
// g = idle generation number |
|
695 |
{ |
|
696 |
__KTRACE_OPT(KSCHED2,DEBUGPRINT("^")); |
|
697 |
iInIDFC = TRUE; |
|
698 |
BTrace0(BTrace::ECpuUsage, BTrace::EIDFCStart); |
|
699 |
TDfc* d = 0; |
|
700 |
NSchedulable* tied = 0; |
|
701 |
FOREVER |
|
702 |
{ |
|
703 |
NKern::DisableAllInterrupts(); |
|
704 |
// remove from pending queue with interrupts disabled |
|
705 |
d = (TDfc*)iDfcs.GetFirst(); |
|
706 |
if (d) |
|
707 |
{ |
|
708 |
d->iNext = 0; |
|
709 |
#ifdef _DEBUG |
|
710 |
TUint32 st8 = DFC_STATE(d) & 0xFF; |
|
711 |
if (st8 != TUint(0x80|iCpuNum) && st8 != TUint(0x21^TheScheduler.iIdleGeneration)) |
|
712 |
__crash(); |
|
713 |
#endif |
|
714 |
if (d->IsDFC()) // also true for mutating NTimer |
|
715 |
{ |
|
716 |
NKern::EnableAllInterrupts(); |
|
717 |
TDfcQue* q = d->iDfcQ; |
|
718 |
NThreadBase* t = q->iThread; |
|
719 |
t->AcqSLock(); // also protects DFC queue |
|
720 |
||
721 |
// transition to 'final queue' state |
|
722 |
// 002g->0001, ok=TRUE |
|
723 |
// 008n->0001, ok=TRUE |
|
724 |
// XXYY->XX00, ok=FALSE |
|
725 |
// XX00->0000, ok=FALSE |
|
726 |
// other starting states invalid |
|
727 |
TUint32 orig = d->MoveToFinalQStateChange() >> 5; |
|
728 |
if (orig==1 || orig==4) |
|
729 |
{ |
|
730 |
// wasn't being cancelled, now marked as on final queue, which means |
|
731 |
// attempts to cancel will block on the thread spin lock |
|
732 |
TUint present = q->iPresent[0]; |
|
733 |
q->Add((TPriListLink*)d); |
|
734 |
if (!present) |
|
735 |
t->iWaitState.UnBlockT(NThreadBase::EWaitDfc, q, KErrNone); |
|
736 |
} |
|
737 |
t->RelSLock(); // also protects DFC queue |
|
738 |
continue; |
|
739 |
} |
|
740 |
// endogenous IDFC - could be tied in which case may need to be punted over to another CPU |
|
741 |
// can't be mutating NTimer since that would have gone into IsDFC() path |
|
742 |
tied = d->iTied; |
|
743 |
if (tied && !d->i8888.iHState0) // if tied and BeginTiedEvent() not already done |
|
744 |
{ |
|
745 |
d->i8888.iHState0 = 1; // flag that BeginTiedEvent() done |
|
746 |
TInt cpu = tied->BeginTiedEvent(); |
|
747 |
if (TUint(cpu) != iCpuNum) |
|
748 |
{ |
|
749 |
// punt over to other CPU |
|
750 |
TBool kick = FALSE; |
|
751 |
TSubScheduler* ss = TheSubSchedulers + cpu; |
|
752 |
ss->iExIDfcLock.LockOnly(); |
|
753 |
// transition state here to handle cancel |
|
754 |
// XXYY->XX00, ok=FALSE |
|
755 |
// XX00->0000, ok=FALSE |
|
756 |
// 008n->00Am, ok=TRUE |
|
757 |
// 002g->00Am, ok=TRUE |
|
758 |
// other starting states invalid |
|
759 |
TUint32 orig = d->TransferIDFCStateChange(cpu) >> 5; |
|
760 |
if (orig==1 || orig==4) |
|
761 |
{ |
|
762 |
kick = !ss->iExIDfcPendingFlag; |
|
763 |
ss->iExIDfcPendingFlag = TRUE; |
|
764 |
ss->iExIDfcs.Add(d); |
|
765 |
} |
|
766 |
ss->iExIDfcLock.UnlockOnly(); |
|
767 |
if (kick) |
|
90
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
768 |
{ |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
769 |
TScheduler& s = TheScheduler; |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
770 |
TUint32 cpuMask = 1u<<cpu; |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
771 |
if (!(s.iThreadAcceptCpus & cpuMask)) // deal with case where target CPU is shutting down or has already shut down |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
772 |
{ |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
773 |
TInt irq = s.iGenIPILock.LockIrqSave(); |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
774 |
if (!(s.iIpiAcceptCpus & cpuMask)) |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
775 |
{ |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
776 |
s.iCCReactivateCpus |= cpuMask; |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
777 |
kick = FALSE; |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
778 |
} |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
779 |
s.iGenIPILock.UnlockIrqRestore(irq); |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
780 |
if (!kick) |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
781 |
s.iCCReactivateDfc.DoEnque(); // arrange for target CPU to be powered on |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
782 |
} |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
783 |
} |
947f0dc9f7a8
Revision: 201015
Dremov Kirill (Nokia-D-MSW/Tampere) <kirill.dremov@nokia.com>
parents:
0
diff
changeset
|
784 |
if (kick) |
0 | 785 |
send_resched_ipi(cpu); |
786 |
NKern::EnableAllInterrupts(); // let interrupts in |
|
787 |
if (orig >= 8) |
|
788 |
tied->EndTiedEvent(); // IDFC cancelled so release tied thread/group |
|
789 |
continue; |
|
790 |
} |
|
791 |
} |
|
792 |
} |
|
793 |
else |
|
794 |
{ |
|
795 |
if (!iExIDfcPendingFlag) |
|
796 |
break; |
|
797 |
iExIDfcLock.LockOnly(); |
|
798 |
d = (TDfc*)iExIDfcs.GetFirst(); |
|
799 |
if (!d) |
|
800 |
{ |
|
801 |
iExIDfcPendingFlag = 0; |
|
802 |
iExIDfcLock.UnlockOnly(); |
|
803 |
break; |
|
804 |
} |
|
805 |
d->iNext = 0; |
|
806 |
tied = d->iTied; |
|
807 |
__NK_ASSERT_ALWAYS(d->IsIDFC() && tied); // only tied IDFCs should get here |
|
808 |
#ifdef _DEBUG |
|
809 |
TUint32 st8 = DFC_STATE(d) & 0xFF; |
|
810 |
if (st8 != (0xA0|iCpuNum)) |
|
811 |
__crash(); |
|
812 |
#endif |
|
813 |
iExIDfcLock.UnlockOnly(); |
|
814 |
} |
|
815 |
||
816 |
// endogenous or exogenous IDFC |
|
817 |
// if tied, we are on correct CPU |
|
818 |
TDfcFn f = d->iFn; |
|
819 |
TAny* p = d->iPtr; |
|
820 |
||
821 |
// If Cancel() finds the IDFC in the running state (00Cn or 00En) it will do the following |
|
822 |
// atomic { if (iCurrentIDFC==d) iCurrentIDFC=0; } |
|
823 |
// We must guarantee that the following access is observed before the state change in RunIDFCStateChange() |
|
824 |
// We assume the latter has full barrier semantics to guarantee this. |
|
825 |
iCurrentIDFC = d; |
|
826 |
||
827 |
// transition to running state |
|
828 |
// 002g->00Cn, ok=TRUE |
|
829 |
// 008n->00Cn, ok=TRUE |
|
830 |
// 00An->00Cn, ok=TRUE |
|
831 |
// XXYY->XX00, ok=FALSE |
|
832 |
// XX00->0000, ok=FALSE |
|
833 |
// other starting states invalid |
|
834 |
TUint32 orig = d->RunIDFCStateChange() >> 5; |
|
835 |
NKern::EnableAllInterrupts(); |
|
836 |
if (orig==1 || orig==4 || orig==5) |
|
837 |
{ |
|
838 |
(*f)(p); |
|
839 |
||
840 |
// transition to idle state or rerun if necessary |
|
841 |
// first swap iCurrentIDFC with 0 - if original value != d, don't touch d again, return 0xFFFFFFFF |
|
842 |
// 00Cn->0000 |
|
843 |
// 00En->008n |
|
844 |
// 006n->006n |
|
845 |
// XXCn->XX00 |
|
846 |
// XXEn->XX00 |
|
847 |
// XX6n->XX00 |
|
848 |
// other starting states invalid |
|
849 |
// return original state |
|
850 |
NKern::DisableAllInterrupts(); |
|
851 |
TUint32 orig = d->EndIDFCStateChange(this); |
|
852 |
if ((orig>>5)==7) |
|
853 |
{ |
|
854 |
iDfcs.Add(d); |
|
855 |
#ifdef _DEBUG |
|
856 |
TUint32 st8 = DFC_STATE(d) & 0xFF; |
|
857 |
if (st8 != (0x80|iCpuNum)) |
|
858 |
__crash(); |
|
859 |
#endif |
|
860 |
continue; |
|
861 |
} |
|
862 |
else if ((orig>>5)==3) |
|
863 |
{ |
|
864 |
TheScheduler.iIdleSpinLock.LockOnly(); |
|
865 |
// 006n->002g |
|
866 |
// XX6n->XX00 |
|
867 |
orig = d->EndIDFCStateChange2(); |
|
868 |
if ((orig>>5)==3) |
|
869 |
TheScheduler.iIdleDfcs.Add(d); |
|
870 |
TheScheduler.iIdleSpinLock.UnlockOnly(); |
|
871 |
} |
|
872 |
NKern::EnableAllInterrupts(); |
|
873 |
if (tied && orig<0x10000) |
|
874 |
tied->EndTiedEvent(); // if we set iCurrentIDFC back to 0, we release the tied thread/group |
|
875 |
} |
|
876 |
else |
|
877 |
{ |
|
878 |
iCurrentIDFC = 0; |
|
879 |
if (tied) |
|
880 |
tied->EndTiedEvent(); // IDFC cancelled so release tied thread/group |
|
881 |
} |
|
882 |
} |
|
883 |
iDfcPendingFlag = 0; |
|
884 |
BTrace0(BTrace::ECpuUsage, BTrace::EIDFCEnd); |
|
885 |
iInIDFC = 0; |
|
886 |
__KTRACE_OPT(KSCHED2,DEBUGPRINT("~")); |
|
887 |
} |
|
888 |
||
889 |
||
890 |
/****************************************************************************** |
|
891 |
* Kernel-side asynchronous request DFCs |
|
892 |
******************************************************************************/ |
|
893 |
||
894 |
EXPORT_C TAsyncRequest::TAsyncRequest(TDfcFn aFunction, TDfcQue* aDfcQ, TInt aPriority) |
|
895 |
: TDfc(aFunction, this, aDfcQ, aPriority), iCompletionObject(0), iCancel(0), iResult(0) |
|
896 |
{ |
|
897 |
} |
|
898 |
||
899 |
||
900 |
EXPORT_C void TAsyncRequest::Send(TDfc* aCompletionDfc) |
|
901 |
{ |
|
902 |
__NK_ASSERT_DEBUG(!iCompletionObject); |
|
903 |
iCancel = EFalse; |
|
904 |
iCompletionObject = (TAny*)((TLinAddr)aCompletionDfc|1); |
|
905 |
TDfc::Enque(); |
|
906 |
} |
|
907 |
||
908 |
||
909 |
EXPORT_C void TAsyncRequest::Send(NFastSemaphore* aCompletionSemaphore) |
|
910 |
{ |
|
911 |
__NK_ASSERT_DEBUG(!iCompletionObject); |
|
912 |
iCancel = EFalse; |
|
913 |
iCompletionObject = aCompletionSemaphore; |
|
914 |
TDfc::Enque(); |
|
915 |
} |
|
916 |
||
917 |
||
918 |
EXPORT_C TInt TAsyncRequest::SendReceive() |
|
919 |
{ |
|
920 |
NFastSemaphore signal; |
|
921 |
NKern::FSSetOwner(&signal, 0); |
|
922 |
Send(&signal); |
|
923 |
NKern::FSWait(&signal); |
|
924 |
return iResult; |
|
925 |
} |
|
926 |
||
927 |
||
928 |
EXPORT_C void TAsyncRequest::Cancel() |
|
929 |
{ |
|
930 |
iCancel = ETrue; |
|
931 |
if(TDfc::Cancel()) |
|
932 |
Complete(KErrCancel); |
|
933 |
} |
|
934 |
||
935 |
||
936 |
EXPORT_C void TAsyncRequest::Complete(TInt aResult) |
|
937 |
{ |
|
938 |
TLinAddr signal = (TLinAddr)__e32_atomic_swp_ord_ptr(&iCompletionObject, 0); |
|
939 |
if(signal) |
|
940 |
{ |
|
941 |
iResult = aResult; |
|
942 |
if(signal&1) |
|
943 |
((TDfc*)(signal&~1))->Enque(); |
|
944 |
else |
|
945 |
NKern::FSSignal((NFastSemaphore*)signal); |
|
946 |
} |
|
947 |
} |