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// Copyright (c) 1998-2009 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\include\nkern\nkern.h
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//
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// WARNING: This file contains some APIs which are internal and are subject
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// to change without notice. Such APIs should therefore not be used
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// outside the Kernel and Hardware Services package.
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//
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#ifndef __NKERN_H__
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#define __NKERN_H__
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#ifdef __STANDALONE_NANOKERNEL__
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#undef __IN_KERNEL__
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#define __IN_KERNEL__
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#endif
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#include <e32const.h>
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#include <nklib.h>
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#include <dfcs.h>
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#include <nk_trace.h>
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#include <e32atomics.h>
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extern "C" {
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/** @internalComponent */
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IMPORT_C void NKFault(const char* file, TInt line);
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/** @internalComponent */
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void NKIdle(TInt aStage);
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}
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/**
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@publishedPartner
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@released
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*/
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#define FAULT() NKFault(__FILE__,__LINE__)
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#ifdef _DEBUG
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/**
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@publishedPartner
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@released
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*/
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#define __NK_ASSERT_DEBUG(c) ((void) ((c)||(FAULT(),0)) )
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#else
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#define __NK_ASSERT_DEBUG(c)
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#endif
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/**
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@publishedPartner
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@released
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*/
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#define __NK_ASSERT_ALWAYS(c) ((void) ((c)||(FAULT(),0)) )
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/**
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@publishedPartner
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@released
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*/
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const TInt KNumPriorities=64;
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const TInt KMaxCpus=8;
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class NThread;
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/** Spin lock
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Used for protecting a code fragment against both interrupts and concurrent
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execution on another processor.
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@internalComponent
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*/
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class TSpinLock
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{
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public:
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enum TOrder
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{
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// Bit 7 of order clear for locks used with interrupts disabled
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EOrderGenericIrqLow0 =0x00u, // Device driver spin locks, low range
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EOrderGenericIrqLow1 =0x01u, // Device driver spin locks, low range
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EOrderGenericIrqLow2 =0x02u, // Device driver spin locks, low range
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EOrderGenericIrqLow3 =0x03u, // Device driver spin locks, low range
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EOrderGenericIrqHigh0 =0x18u, // Device driver spin locks, high range
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EOrderGenericIrqHigh1 =0x19u, // Device driver spin locks, high range
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EOrderGenericIrqHigh2 =0x1Au, // Device driver spin locks, high range
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EOrderGenericIrqHigh3 =0x1Bu, // Device driver spin locks, high range
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// Bit 7 of order set for locks used with interrupts enabled, preemption disabled
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EOrderGenericPreLow0 =0x80u, // Device driver spin locks, low range
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EOrderGenericPreLow1 =0x81u, // Device driver spin locks, low range
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EOrderGenericPreHigh0 =0x9Eu, // Device driver spin locks, high range
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EOrderGenericPreHigh1 =0x9Fu, // Device driver spin locks, high range
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EOrderNone =0xFFu // No order check required (e.g. for dynamic ordering)
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};
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public:
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IMPORT_C TSpinLock(TUint aOrder);
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private:
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volatile TUint64 iLock;
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};
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/** Macro to disable interrupts and acquire the lock.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_IRQ(lock) ((void)NKern::DisableAllInterrupts())
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/** Macro to release the lock and enable interrupts.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_IRQ(lock) (NKern::EnableAllInterrupts())
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/** Macro to see if someone else is waiting for the lock, enabling IRQs
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then disabling IRQs again.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_IRQ(lock) (NKern::EnableAllInterrupts(),(void)NKern::DisableAllInterrupts(),((TBool)TRUE))
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/** Macro to remember original interrupt state then disable interrupts
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and acquire the lock.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_IRQSAVE(lock) (NKern::DisableAllInterrupts())
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/** Macro to release the lock then restore original interrupt state to that
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supplied.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_IRQRESTORE(lock,irq) (NKern::RestoreInterrupts(irq))
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/** Macro to see if someone else is waiting for the lock, enabling IRQs to
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the original state supplied then disabling IRQs again.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_IRQRESTORE(lock,irq) (NKern::RestoreInterrupts(irq),((void)NKern::DisableAllInterrupts()),((TBool)TRUE))
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/** Macro to acquire the lock. This assumes the caller has already disabled
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interrupts/preemption.
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If interrupts/preemption is not disabled a run-time assert will occur
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This is to protect against unsafe code that might lead to same core
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deadlock.
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In device driver code it is safer to use __SPIN_LOCK_IRQSAVE() instead,
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although not as efficient should interrupts aleady be disabled for the
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duration the lock is held.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK(lock)
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/** Macro to release the lock, don't change interrupt/preemption state.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK(lock)
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/**
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@internalComponent
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*/
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#define __SPIN_FLASH(lock) ((TBool)FALSE)
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/** Macro to see if someone else is waiting for the lock, enabling preemption
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then disabling it again.
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_PREEMPT(lock) ((TBool)NKern::PreemptionPoint())
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/** Read/Write Spin lock
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@internalComponent
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*/
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class TRWSpinLock
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{
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public:
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IMPORT_C TRWSpinLock(TUint aOrder); // Uses same order space as TSpinLock
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private:
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volatile TUint64 iLock;
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};
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_IRQ_R(lock) ((void)NKern::DisableAllInterrupts())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_IRQ_R(lock) (NKern::EnableAllInterrupts())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_IRQ_R(lock) (NKern::EnableAllInterrupts(),(void)NKern::DisableAllInterrupts(),((TBool)TRUE))
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_IRQ_W(lock) ((void)NKern::DisableAllInterrupts())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_IRQ_W(lock) (NKern::EnableAllInterrupts())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_IRQ_W(lock) (NKern::EnableAllInterrupts(),(void)NKern::DisableAllInterrupts(),((TBool)TRUE))
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_R(lock)
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_R(lock)
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/**
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@internalComponent
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*/
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#define __SPIN_FLASH_R(lock) ((TBool)FALSE)
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_W(lock)
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_W(lock)
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/**
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@internalComponent
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*/
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#define __SPIN_FLASH_W(lock) ((TBool)FALSE)
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_IRQSAVE_R(lock) (NKern::DisableAllInterrupts())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_IRQRESTORE_R(lock,irq) (NKern::RestoreInterrupts(irq))
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_IRQRESTORE_R(lock,irq) (NKern::RestoreInterrupts(irq),((void)NKern::DisableAllInterrupts()),((TBool)TRUE))
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_LOCK_IRQSAVE_W(lock) (NKern::DisableAllInterrupts())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_UNLOCK_IRQRESTORE_W(lock,irq) (NKern::RestoreInterrupts(irq))
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_IRQRESTORE_W(lock,irq) (NKern::RestoreInterrupts(irq),((void)NKern::DisableAllInterrupts()),((TBool)TRUE))
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_PREEMPT_R(lock) ((TBool)NKern::PreemptionPoint())
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/**
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@publishedPartner
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@prototype
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*/
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#define __SPIN_FLASH_PREEMPT_W(lock) ((TBool)NKern::PreemptionPoint())
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/** Nanokernel fast semaphore
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A light-weight semaphore class that only supports a single waiting thread,
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suitable for the Symbian OS thread I/O semaphore.
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Initialising a NFastSemaphore involves two steps:
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- Constructing the semaphore
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- Setting the semaphore owning thread (the one allowed to wait on it)
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For example, creating one for the current thread to wait on:
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@code
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NFastSemaphore sem;
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sem.iOwningThread = NKern::CurrentThread();
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@endcode
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@publishedPartner
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@released
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*/
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class NFastSemaphore
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{
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public:
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inline NFastSemaphore();
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inline NFastSemaphore(NThreadBase* aThread);
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IMPORT_C void SetOwner(NThreadBase* aThread);
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IMPORT_C void Wait();
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IMPORT_C void Signal();
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IMPORT_C void SignalN(TInt aCount);
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IMPORT_C void Reset();
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void WaitCancel();
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public:
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TInt iCount; /**< @internalComponent */
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/** The thread allowed to wait on the semaphore
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@internalComponent
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*/
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NThreadBase* iOwningThread;
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};
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/** Create a fast semaphore
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@publishedPartner
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@released
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*/
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inline NFastSemaphore::NFastSemaphore()
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: iCount(0), iOwningThread(NULL)
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{}
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/** Nanokernel fast mutex
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A light-weight priority-inheritance mutex that can be used if the following
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conditions apply:
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- Threads that hold the mutex never block.
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- The mutex is never acquired in a nested fashion
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If either of these conditions is not met, a DMutex object is more appropriate.
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@publishedPartner
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@released
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*/
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class NFastMutex
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{
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public:
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IMPORT_C NFastMutex();
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IMPORT_C void Wait();
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IMPORT_C void Signal();
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IMPORT_C TBool HeldByCurrentThread(); /**< @internalComponent */
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public:
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NThreadBase* iHoldingThread; /**< @internalComponent */
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/** MUST ALWAYS BE 0 or 1
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@internalComponent
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*/
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TInt iWaiting;
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};
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/**
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@publishedPartner
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@released
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The type of the callback function used by the nanokernel timer.
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@see NTimer
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*/
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typedef void (*NTimerFn)(TAny*);
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/**
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@publishedPartner
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@released
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A basic relative timer provided by the nanokernel.
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It can generate either a one-shot interrupt or periodic interrupts.
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A timeout handler is called when the timer expires, either:
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- from the timer ISR - if the timer is queued via OneShot(TInt aTime) or OneShot(TInt aTime, TBool EFalse), or
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- from the nanokernel timer dfc1 thread - if the timer is queued via OneShot(TInt aTime, TBool ETrue) call, or
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- from any other dfc thread that provided DFC belongs to - if the timer is queued via OneShot(TInt aTime, TDfc& aDfc) call.
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Call-back mechanism cannot be changed in the life time of a timer.
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These timer objects may be manipulated from any context.
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The timers are driven from a periodic system tick interrupt,
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usually a 1ms period.
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@see NTimerFn
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*/
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class NTimer : public SDblQueLink
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{
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public:
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/**
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Default constructor.
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*/
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inline NTimer()
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: iState(EIdle)
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{}
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/**
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Constructor taking a callback function and a pointer to be passed
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to the callback function.
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@param aFunction The callback function.
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@param aPtr A pointer to be passed to the callback function
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when called.
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461 |
*/
|
|
462 |
inline NTimer(NTimerFn aFunction, TAny* aPtr)
|
|
463 |
: iPtr(aPtr), iFunction(aFunction), iState(EIdle)
|
|
464 |
{}
|
|
465 |
IMPORT_C TInt OneShot(TInt aTime);
|
|
466 |
IMPORT_C TInt OneShot(TInt aTime, TBool aDfc);
|
|
467 |
IMPORT_C TInt OneShot(TInt aTime, TDfc& aDfc);
|
|
468 |
IMPORT_C TInt Again(TInt aTime);
|
|
469 |
IMPORT_C TBool Cancel();
|
|
470 |
IMPORT_C TBool IsPending();
|
|
471 |
public:
|
|
472 |
/**
|
|
473 |
@internalComponent
|
|
474 |
*/
|
|
475 |
enum TState
|
|
476 |
{
|
|
477 |
EIdle=0, // not queued
|
|
478 |
ETransferring=1, // being transferred from holding to ordered queue
|
|
479 |
EHolding=2, // on holding queue
|
|
480 |
EOrdered=3, // on ordered queue
|
|
481 |
ECritical=4, // on ordered queue and in use by queue walk routine
|
|
482 |
EFinal=5, // on final queue
|
|
483 |
};
|
|
484 |
public:
|
|
485 |
/** Argument for callback function or the pointer to TDfc */
|
|
486 |
TAny* iPtr; /**< @internalComponent */
|
|
487 |
|
|
488 |
/** Pointer to callback function. NULL value indicates that queuing of provided Dfc queue will be done
|
|
489 |
instead of calling callback function on completion */
|
|
490 |
NTimerFn iFunction; /**< @internalComponent */
|
|
491 |
|
|
492 |
TUint32 iTriggerTime; /**< @internalComponent */
|
|
493 |
TUint8 iCompleteInDfc; /**< @internalComponent */
|
|
494 |
TUint8 iState; /**< @internalComponent */
|
|
495 |
TUint8 iPad1; /**< @internalComponent */
|
|
496 |
|
|
497 |
/** Available for timer client to use.
|
|
498 |
@internalTechnology */
|
|
499 |
TUint8 iUserFlags;
|
|
500 |
};
|
|
501 |
|
|
502 |
/**
|
|
503 |
@internalTechnology
|
|
504 |
*/
|
|
505 |
#define i_NTimer_iUserFlags iUserFlags
|
|
506 |
|
|
507 |
/**
|
|
508 |
@internalComponent
|
|
509 |
*/
|
|
510 |
#define i_NTimer_iState iState
|
|
511 |
|
|
512 |
/**
|
|
513 |
@publishedPartner
|
|
514 |
@released
|
|
515 |
*/
|
|
516 |
typedef void (*NThreadFunction)(TAny*);
|
|
517 |
|
|
518 |
/**
|
|
519 |
@publishedPartner
|
|
520 |
@released
|
|
521 |
*/
|
|
522 |
typedef TDfc* (*NThreadExitHandler)(NThread*);
|
|
523 |
|
|
524 |
/**
|
|
525 |
@publishedPartner
|
|
526 |
@released
|
|
527 |
*/
|
|
528 |
typedef void (*NThreadStateHandler)(NThread*,TInt,TInt);
|
|
529 |
|
|
530 |
/**
|
|
531 |
@publishedPartner
|
|
532 |
@released
|
|
533 |
*/
|
|
534 |
typedef void (*NThreadExceptionHandler)(TAny*,NThread*);
|
|
535 |
|
|
536 |
/**
|
|
537 |
@publishedPartner
|
|
538 |
@released
|
|
539 |
*/
|
|
540 |
typedef void (*NThreadTimeoutHandler)(NThread*,TInt);
|
|
541 |
|
|
542 |
/**
|
|
543 |
@publishedPartner
|
|
544 |
@released
|
|
545 |
*/
|
|
546 |
struct SNThreadHandlers
|
|
547 |
{
|
|
548 |
NThreadExitHandler iExitHandler;
|
|
549 |
NThreadStateHandler iStateHandler;
|
|
550 |
NThreadExceptionHandler iExceptionHandler;
|
|
551 |
NThreadTimeoutHandler iTimeoutHandler;
|
|
552 |
};
|
|
553 |
|
|
554 |
/** @internalComponent */
|
|
555 |
extern void NThread_Default_State_Handler(NThread*, TInt, TInt);
|
|
556 |
|
|
557 |
/** @internalComponent */
|
|
558 |
extern void NThread_Default_Exception_Handler(TAny*, NThread*);
|
|
559 |
|
|
560 |
/** @internalComponent */
|
|
561 |
#define NTHREAD_DEFAULT_EXIT_HANDLER ((NThreadExitHandler)0)
|
|
562 |
|
|
563 |
/** @internalComponent */
|
|
564 |
#define NTHREAD_DEFAULT_STATE_HANDLER (&NThread_Default_State_Handler)
|
|
565 |
|
|
566 |
/** @internalComponent */
|
|
567 |
#define NTHREAD_DEFAULT_EXCEPTION_HANDLER (&NThread_Default_Exception_Handler)
|
|
568 |
|
|
569 |
/** @internalComponent */
|
|
570 |
#define NTHREAD_DEFAULT_TIMEOUT_HANDLER ((NThreadTimeoutHandler)0)
|
|
571 |
|
|
572 |
|
|
573 |
/**
|
|
574 |
@publishedPartner
|
|
575 |
@released
|
|
576 |
*/
|
|
577 |
struct SFastExecTable
|
|
578 |
{
|
|
579 |
TInt iFastExecCount; // includes implicit function#0
|
|
580 |
TLinAddr iFunction[1]; // first entry is for call number 1
|
|
581 |
};
|
|
582 |
|
|
583 |
/**
|
|
584 |
@publishedPartner
|
|
585 |
@released
|
|
586 |
*/
|
|
587 |
const TUint32 KExecFlagClaim=0x80000000; // claim system lock
|
|
588 |
|
|
589 |
/**
|
|
590 |
@publishedPartner
|
|
591 |
@released
|
|
592 |
*/
|
|
593 |
const TUint32 KExecFlagRelease=0x40000000; // release system lock
|
|
594 |
|
|
595 |
/**
|
|
596 |
@publishedPartner
|
|
597 |
@released
|
|
598 |
*/
|
|
599 |
const TUint32 KExecFlagPreprocess=0x20000000; // preprocess
|
|
600 |
|
|
601 |
/**
|
|
602 |
@publishedPartner
|
|
603 |
@released
|
|
604 |
*/
|
|
605 |
const TUint32 KExecFlagExtraArgMask=0x1C000000; // 3 bits indicating additional arguments
|
|
606 |
|
|
607 |
/**
|
|
608 |
@publishedPartner
|
|
609 |
@released
|
|
610 |
*/
|
|
611 |
const TUint32 KExecFlagExtraArgs2=0x04000000; // 2 additional arguments
|
|
612 |
|
|
613 |
/**
|
|
614 |
@publishedPartner
|
|
615 |
@released
|
|
616 |
*/
|
|
617 |
const TUint32 KExecFlagExtraArgs3=0x08000000; // 3 additional arguments
|
|
618 |
|
|
619 |
/**
|
|
620 |
@publishedPartner
|
|
621 |
@released
|
|
622 |
*/
|
|
623 |
const TUint32 KExecFlagExtraArgs4=0x0C000000; // 4 additional arguments
|
|
624 |
|
|
625 |
/**
|
|
626 |
@publishedPartner
|
|
627 |
@released
|
|
628 |
*/
|
|
629 |
const TUint32 KExecFlagExtraArgs5=0x10000000; // 5 additional arguments
|
|
630 |
|
|
631 |
/**
|
|
632 |
@publishedPartner
|
|
633 |
@released
|
|
634 |
*/
|
|
635 |
const TUint32 KExecFlagExtraArgs6=0x14000000; // 6 additional arguments
|
|
636 |
|
|
637 |
/**
|
|
638 |
@publishedPartner
|
|
639 |
@released
|
|
640 |
*/
|
|
641 |
const TUint32 KExecFlagExtraArgs7=0x18000000; // 7 additional arguments
|
|
642 |
|
|
643 |
/**
|
|
644 |
@publishedPartner
|
|
645 |
@released
|
|
646 |
*/
|
|
647 |
const TUint32 KExecFlagExtraArgs8=0x1C000000; // 8 additional arguments
|
|
648 |
|
|
649 |
|
|
650 |
/**
|
|
651 |
@publishedPartner
|
|
652 |
@released
|
|
653 |
*/
|
|
654 |
struct SSlowExecEntry
|
|
655 |
{
|
|
656 |
TUint32 iFlags; // information about call
|
|
657 |
TLinAddr iFunction; // address of function to be called
|
|
658 |
};
|
|
659 |
|
|
660 |
|
|
661 |
/**
|
|
662 |
@publishedPartner
|
|
663 |
@released
|
|
664 |
*/
|
|
665 |
struct SSlowExecTable
|
|
666 |
{
|
|
667 |
TInt iSlowExecCount;
|
|
668 |
TLinAddr iInvalidExecHandler; // used if call number invalid
|
|
669 |
TLinAddr iPreprocessHandler; // used for handle lookups
|
|
670 |
SSlowExecEntry iEntries[1]; // first entry is for call number 0
|
|
671 |
};
|
|
672 |
|
|
673 |
// Thread iAttributes Constants
|
|
674 |
const TUint8 KThreadAttImplicitSystemLock=1; /**< @internalComponent */
|
|
675 |
const TUint8 KThreadAttAddressSpace=2; /**< @internalComponent */
|
|
676 |
const TUint8 KThreadAttLoggable=4; /**< @internalComponent */
|
|
677 |
const TUint8 KThreadAttDelayed=8; /**< @internalComponent */
|
|
678 |
|
|
679 |
|
|
680 |
// Thread CPU
|
|
681 |
const TUint32 KCpuAffinityAny=0xffffffffu; /**< @internalComponent */
|
|
682 |
|
|
683 |
/** Information needed for creating a nanothread.
|
|
684 |
|
|
685 |
@publishedPartner
|
|
686 |
@released
|
|
687 |
*/
|
|
688 |
struct SNThreadCreateInfo
|
|
689 |
{
|
|
690 |
NThreadFunction iFunction;
|
|
691 |
TAny* iStackBase;
|
|
692 |
TInt iStackSize;
|
|
693 |
TInt iPriority;
|
|
694 |
TInt iTimeslice;
|
|
695 |
TUint8 iAttributes;
|
|
696 |
TUint32 iCpuAffinity;
|
|
697 |
const SNThreadHandlers* iHandlers;
|
|
698 |
const SFastExecTable* iFastExecTable;
|
|
699 |
const SSlowExecTable* iSlowExecTable;
|
|
700 |
const TUint32* iParameterBlock;
|
|
701 |
TInt iParameterBlockSize; // if zero, iParameterBlock _is_ the initial data
|
|
702 |
// otherwise it points to n bytes of initial data
|
|
703 |
};
|
|
704 |
|
|
705 |
/** Constant for use with NKern:: functions which release a fast mutex as well
|
|
706 |
as performing some other operations.
|
|
707 |
|
|
708 |
@publishedPartner
|
|
709 |
@released
|
|
710 |
*/
|
|
711 |
#define SYSTEM_LOCK (NFastMutex*)0
|
|
712 |
|
|
713 |
|
|
714 |
/** Idle handler function
|
|
715 |
Pointer to a function which is called whenever a CPU goes idle
|
|
716 |
|
|
717 |
@param aPtr The iPtr stored in the SCpuIdleHandler structure
|
|
718 |
@param aStage If positive, the number of processors still active
|
|
719 |
If zero, indicates all processors are now idle
|
|
720 |
-1 indicates that postamble processing is required after waking up
|
|
721 |
|
|
722 |
@internalComponent
|
|
723 |
*/
|
|
724 |
typedef void (*TCpuIdleHandlerFn)(TAny* aPtr, TInt aStage);
|
|
725 |
|
|
726 |
/** Idle handler structure
|
|
727 |
|
|
728 |
@internalComponent
|
|
729 |
*/
|
|
730 |
struct SCpuIdleHandler
|
|
731 |
{
|
|
732 |
TCpuIdleHandlerFn iHandler;
|
|
733 |
TAny* iPtr;
|
|
734 |
volatile TBool iPostambleRequired;
|
|
735 |
};
|
|
736 |
|
|
737 |
|
|
738 |
/**
|
|
739 |
@internalComponent
|
|
740 |
*/
|
|
741 |
enum TUserModeCallbackReason
|
|
742 |
{
|
|
743 |
EUserModeCallbackRun,
|
|
744 |
EUserModeCallbackCancel,
|
|
745 |
};
|
|
746 |
|
|
747 |
|
|
748 |
/**
|
|
749 |
A callback function executed when a thread returns to user mode.
|
|
750 |
|
|
751 |
@internalComponent
|
|
752 |
*/
|
|
753 |
typedef void (*TUserModeCallbackFunc)(TAny* aThisPtr, TUserModeCallbackReason aReasonCode);
|
|
754 |
|
|
755 |
|
|
756 |
/**
|
|
757 |
An object representing a queued callback to be executed when a thread returns to user mode.
|
|
758 |
|
|
759 |
@internalComponent
|
|
760 |
*/
|
|
761 |
class TUserModeCallback
|
|
762 |
{
|
|
763 |
public:
|
|
764 |
TUserModeCallback(TUserModeCallbackFunc);
|
|
765 |
~TUserModeCallback();
|
|
766 |
|
|
767 |
public:
|
|
768 |
TUserModeCallback* volatile iNext;
|
|
769 |
TUserModeCallbackFunc iFunc;
|
|
770 |
};
|
|
771 |
|
|
772 |
TUserModeCallback* const KUserModeCallbackUnqueued = ((TUserModeCallback*)1);
|
|
773 |
|
|
774 |
|
|
775 |
/** Nanokernel functions
|
|
776 |
|
|
777 |
@publishedPartner
|
|
778 |
@released
|
|
779 |
*/
|
|
780 |
class NKern
|
|
781 |
{
|
|
782 |
public:
|
|
783 |
/** Bitmask values used when blocking a nanothread.
|
|
784 |
@see NKern::Block()
|
|
785 |
*/
|
|
786 |
enum TBlockMode
|
|
787 |
{
|
|
788 |
EEnterCS=1, /**< Enter thread critical section before blocking */
|
|
789 |
ERelease=2, /**< Release specified fast mutex before blocking */
|
|
790 |
EClaim=4, /**< Re-acquire specified fast mutex when unblocked */
|
|
791 |
EObstruct=8, /**< Signifies obstruction of thread rather than lack of work to do */
|
|
792 |
};
|
|
793 |
|
|
794 |
/** Values that specify the context of the processor.
|
|
795 |
@see NKern::CurrentContext()
|
|
796 |
*/
|
|
797 |
enum TContext
|
|
798 |
{
|
|
799 |
EThread=0, /**< The processor is in a thread context*/
|
|
800 |
EIDFC=1, /**< The processor is in an IDFC context*/
|
|
801 |
EInterrupt=2, /**< The processor is in an interrupt context*/
|
|
802 |
EEscaped=KMaxTInt /**< Not valid a process context on target hardware*/
|
|
803 |
};
|
|
804 |
|
|
805 |
public:
|
|
806 |
// Threads
|
|
807 |
IMPORT_C static TInt ThreadCreate(NThread* aThread, SNThreadCreateInfo& anInfo);
|
|
808 |
IMPORT_C static TBool ThreadSuspend(NThread* aThread, TInt aCount);
|
|
809 |
IMPORT_C static TBool ThreadResume(NThread* aThread);
|
|
810 |
IMPORT_C static TBool ThreadResume(NThread* aThread, NFastMutex* aMutex);
|
|
811 |
IMPORT_C static TBool ThreadForceResume(NThread* aThread);
|
|
812 |
IMPORT_C static TBool ThreadForceResume(NThread* aThread, NFastMutex* aMutex);
|
|
813 |
IMPORT_C static void ThreadRelease(NThread* aThread, TInt aReturnValue);
|
|
814 |
IMPORT_C static void ThreadRelease(NThread* aThread, TInt aReturnValue, NFastMutex* aMutex);
|
|
815 |
IMPORT_C static void ThreadSetPriority(NThread* aThread, TInt aPriority);
|
|
816 |
IMPORT_C static void ThreadSetPriority(NThread* aThread, TInt aPriority, NFastMutex* aMutex);
|
|
817 |
IMPORT_C static void ThreadRequestSignal(NThread* aThread);
|
|
818 |
IMPORT_C static void ThreadRequestSignal(NThread* aThread, NFastMutex* aMutex);
|
|
819 |
IMPORT_C static void ThreadRequestSignal(NThread* aThread, TInt aCount);
|
|
820 |
IMPORT_C static void ThreadKill(NThread* aThread);
|
|
821 |
IMPORT_C static void ThreadKill(NThread* aThread, NFastMutex* aMutex);
|
|
822 |
IMPORT_C static void ThreadEnterCS();
|
|
823 |
IMPORT_C static void ThreadLeaveCS();
|
|
824 |
static NThread* _ThreadEnterCS(); /**< @internalComponent */
|
|
825 |
static void _ThreadLeaveCS(); /**< @internalComponent */
|
|
826 |
IMPORT_C static TInt Block(TUint32 aTimeout, TUint aMode, NFastMutex* aMutex);
|
|
827 |
IMPORT_C static TInt Block(TUint32 aTimeout, TUint aMode);
|
|
828 |
IMPORT_C static void NanoBlock(TUint32 aTimeout, TUint aState, TAny* aWaitObj);
|
|
829 |
IMPORT_C static void ThreadGetUserContext(NThread* aThread, TAny* aContext, TUint32& aAvailRegistersMask);
|
|
830 |
IMPORT_C static void ThreadSetUserContext(NThread* aThread, TAny* aContext);
|
|
831 |
IMPORT_C static void ThreadGetSystemContext(NThread* aThread, TAny* aContext, TUint32& aAvailRegistersMask);
|
|
832 |
static void ThreadModifyUsp(NThread* aThread, TLinAddr aUsp);
|
|
833 |
IMPORT_C static TInt FreezeCpu(); /**< @internalComponent */
|
|
834 |
IMPORT_C static void EndFreezeCpu(TInt aCookie); /**< @internalComponent */
|
|
835 |
IMPORT_C static TUint32 ThreadSetCpuAffinity(NThread* aThread, TUint32 aAffinity); /**< @internalComponent */
|
|
836 |
IMPORT_C static void ThreadSetTimeslice(NThread* aThread, TInt aTimeslice); /**< @internalComponent */
|
|
837 |
IMPORT_C static TUint64 ThreadCpuTime(NThread* aThread); /**< @internalComponent */
|
|
838 |
IMPORT_C static TUint32 CpuTimeMeasFreq(); /**< @internalComponent */
|
|
839 |
static TInt QueueUserModeCallback(NThreadBase* aThread, TUserModeCallback* aCallback); /**< @internalComponent */
|
|
840 |
static void MoveUserModeCallbacks(NThreadBase* aSrcThread, NThreadBase* aDestThread); /**< @internalComponent */
|
|
841 |
static void CancelUserModeCallbacks(); /**< @internalComponent */
|
|
842 |
|
|
843 |
// Fast semaphores
|
|
844 |
IMPORT_C static void FSSetOwner(NFastSemaphore* aSem,NThreadBase* aThread);
|
|
845 |
IMPORT_C static void FSWait(NFastSemaphore* aSem);
|
|
846 |
IMPORT_C static void FSSignal(NFastSemaphore* aSem);
|
|
847 |
IMPORT_C static void FSSignal(NFastSemaphore* aSem, NFastMutex* aMutex);
|
|
848 |
IMPORT_C static void FSSignalN(NFastSemaphore* aSem, TInt aCount);
|
|
849 |
IMPORT_C static void FSSignalN(NFastSemaphore* aSem, TInt aCount, NFastMutex* aMutex);
|
|
850 |
|
|
851 |
// Fast mutexes
|
|
852 |
IMPORT_C static void FMWait(NFastMutex* aMutex);
|
|
853 |
IMPORT_C static void FMSignal(NFastMutex* aMutex);
|
|
854 |
IMPORT_C static TBool FMFlash(NFastMutex* aMutex);
|
|
855 |
|
|
856 |
// Scheduler
|
|
857 |
IMPORT_C static void Lock();
|
|
858 |
IMPORT_C static NThread* LockC();
|
|
859 |
IMPORT_C static void Unlock();
|
|
860 |
IMPORT_C static TInt PreemptionPoint();
|
|
861 |
|
|
862 |
// Interrupts
|
|
863 |
IMPORT_C static TInt DisableAllInterrupts();
|
|
864 |
IMPORT_C static TInt DisableInterrupts(TInt aLevel);
|
|
865 |
IMPORT_C static void RestoreInterrupts(TInt aRestoreData);
|
|
866 |
IMPORT_C static void EnableAllInterrupts();
|
|
867 |
|
|
868 |
// Read-modify-write
|
|
869 |
inline static TInt LockedInc(TInt& aCount)
|
|
870 |
{ return __e32_atomic_add_ord32(&aCount,1); }
|
|
871 |
inline static TInt LockedDec(TInt& aCount)
|
|
872 |
{ return __e32_atomic_add_ord32(&aCount,0xffffffff); }
|
|
873 |
inline static TInt LockedAdd(TInt& aDest, TInt aSrc)
|
|
874 |
{ return __e32_atomic_add_ord32(&aDest,aSrc); }
|
|
875 |
inline static TInt64 LockedInc(TInt64& aCount)
|
|
876 |
{ return __e32_atomic_add_ord64(&aCount,1); }
|
|
877 |
inline static TInt64 LockedDec(TInt64& aCount)
|
|
878 |
{ return __e32_atomic_add_ord64(&aCount,TUint64(TInt64(-1))); }
|
|
879 |
inline static TInt64 LockedAdd(TInt64& aDest, TInt64 aSrc) /**< @internalComponent */
|
|
880 |
{ return __e32_atomic_add_ord64(&aDest,aSrc); }
|
|
881 |
inline static TUint32 LockedSetClear(TUint32& aDest, TUint32 aClearMask, TUint32 aSetMask)
|
|
882 |
{ return __e32_atomic_axo_ord32(&aDest,~(aClearMask|aSetMask),aSetMask); }
|
|
883 |
inline static TUint16 LockedSetClear16(TUint16& aDest, TUint16 aClearMask, TUint16 aSetMask) /**< @internalComponent */
|
|
884 |
{ return __e32_atomic_axo_ord16(&aDest,TUint16(~(aClearMask|aSetMask)),aSetMask); }
|
|
885 |
inline static TUint8 LockedSetClear8(TUint8& aDest, TUint8 aClearMask, TUint8 aSetMask)
|
|
886 |
{ return __e32_atomic_axo_ord8(&aDest,TUint8(~(aClearMask|aSetMask)),aSetMask); }
|
|
887 |
inline static TInt SafeInc(TInt& aCount)
|
|
888 |
{ return __e32_atomic_tas_ord32(&aCount,1,1,0); }
|
|
889 |
inline static TInt SafeDec(TInt& aCount)
|
|
890 |
{ return __e32_atomic_tas_ord32(&aCount,1,-1,0); }
|
|
891 |
inline static TInt AddIfGe(TInt& aCount, TInt aLimit, TInt aInc) /**< @internalComponent */
|
|
892 |
{ return __e32_atomic_tas_ord32(&aCount,aLimit,aInc,0); }
|
|
893 |
inline static TInt AddIfLt(TInt& aCount, TInt aLimit, TInt aInc) /**< @internalComponent */
|
|
894 |
{ return __e32_atomic_tas_ord32(&aCount,aLimit,0,aInc); }
|
|
895 |
inline static TAny* SafeSwap(TAny* aNewValue, TAny*& aPtr)
|
|
896 |
{ return __e32_atomic_swp_ord_ptr(&aPtr, aNewValue); }
|
|
897 |
inline static TUint8 SafeSwap8(TUint8 aNewValue, TUint8& aPtr)
|
|
898 |
{ return __e32_atomic_swp_ord8(&aPtr, aNewValue); }
|
|
899 |
inline static TUint16 SafeSwap16(TUint16 aNewValue, TUint16& aPtr) /**< @internalComponent */
|
|
900 |
{ return __e32_atomic_swp_ord16(&aPtr, aNewValue); }
|
|
901 |
inline static TBool CompareAndSwap(TAny*& aPtr, TAny* aExpected, TAny* aNew) /**< @internalComponent */
|
|
902 |
{ return __e32_atomic_cas_ord_ptr(&aPtr, &aExpected, aNew); }
|
|
903 |
inline static TBool CompareAndSwap8(TUint8& aPtr, TUint8 aExpected, TUint8 aNew) /**< @internalComponent */
|
|
904 |
{ return __e32_atomic_cas_ord8(&aPtr, (TUint8*)&aExpected, (TUint8)aNew); }
|
|
905 |
inline static TBool CompareAndSwap16(TUint16& aPtr, TUint16 aExpected, TUint16 aNew) /**< @internalComponent */
|
|
906 |
{ return __e32_atomic_cas_ord16(&aPtr, (TUint16*)&aExpected, (TUint16)aNew); }
|
|
907 |
inline static TUint32 SafeSwap(TUint32 aNewValue, TUint32& aPtr) /**< @internalComponent */
|
|
908 |
{ return __e32_atomic_swp_ord32(&aPtr, aNewValue); }
|
|
909 |
inline static TUint SafeSwap(TUint aNewValue, TUint& aPtr) /**< @internalComponent */
|
|
910 |
{ return __e32_atomic_swp_ord32(&aPtr, aNewValue); }
|
|
911 |
inline static TInt SafeSwap(TInt aNewValue, TInt& aPtr) /**< @internalComponent */
|
|
912 |
{ return __e32_atomic_swp_ord32(&aPtr, aNewValue); }
|
|
913 |
inline static TBool CompareAndSwap(TUint32& aPtr, TUint32 aExpected, TUint32 aNew) /**< @internalComponent */
|
|
914 |
{ return __e32_atomic_cas_ord32(&aPtr, &aExpected, aNew); }
|
|
915 |
inline static TBool CompareAndSwap(TUint& aPtr, TUint aExpected, TUint aNew) /**< @internalComponent */
|
|
916 |
{ return __e32_atomic_cas_ord32(&aPtr, (TUint32*)&aExpected, (TUint32)aNew); }
|
|
917 |
inline static TBool CompareAndSwap(TInt& aPtr, TInt aExpected, TInt aNew) /**< @internalComponent */
|
|
918 |
{ return __e32_atomic_cas_ord32(&aPtr, (TUint32*)&aExpected, (TUint32)aNew); }
|
|
919 |
|
|
920 |
|
|
921 |
// Miscellaneous
|
|
922 |
IMPORT_C static NThread* CurrentThread();
|
|
923 |
IMPORT_C static TInt CurrentCpu(); /**< @internalComponent */
|
|
924 |
IMPORT_C static TInt NumberOfCpus(); /**< @internalComponent */
|
|
925 |
IMPORT_C static void LockSystem();
|
|
926 |
IMPORT_C static void UnlockSystem();
|
|
927 |
IMPORT_C static TBool FlashSystem();
|
|
928 |
IMPORT_C static void WaitForAnyRequest();
|
|
929 |
IMPORT_C static void Sleep(TUint32 aTime);
|
|
930 |
IMPORT_C static void Exit();
|
|
931 |
IMPORT_C static void DeferredExit();
|
|
932 |
IMPORT_C static void YieldTimeslice(); /**< @internalComponent */
|
|
933 |
IMPORT_C static void RotateReadyList(TInt aPriority);
|
|
934 |
IMPORT_C static void RotateReadyList(TInt aPriority, TInt aCpu); /**< @internalTechnology */
|
|
935 |
IMPORT_C static void RecordIntLatency(TInt aLatency, TInt aIntMask); /**< @internalTechnology */
|
|
936 |
IMPORT_C static void RecordThreadLatency(TInt aLatency); /**< @internalTechnology */
|
|
937 |
IMPORT_C static TUint32 TickCount();
|
|
938 |
IMPORT_C static TInt TickPeriod();
|
|
939 |
IMPORT_C static TInt TimerTicks(TInt aMilliseconds);
|
|
940 |
IMPORT_C static TInt TimesliceTicks(TUint32 aMicroseconds); /**< @internalTechnology */
|
|
941 |
IMPORT_C static TInt CurrentContext();
|
|
942 |
IMPORT_C static TUint32 FastCounter();
|
|
943 |
IMPORT_C static TInt FastCounterFrequency();
|
|
944 |
static void Init0(TAny* aVariantData);
|
|
945 |
static void Init(NThread* aThread, SNThreadCreateInfo& anInfo);
|
|
946 |
IMPORT_C static TBool KernelLocked(TInt aCount=0); /**< @internalTechnology */
|
|
947 |
IMPORT_C static NFastMutex* HeldFastMutex(); /**< @internalTechnology */
|
|
948 |
static void Idle();
|
|
949 |
IMPORT_C static SCpuIdleHandler* CpuIdleHandler(); /**< @internalTechnology */
|
|
950 |
static void NotifyCrash(const TAny* a0, TInt a1); /**< @internalTechnology */
|
|
951 |
IMPORT_C static TBool Crashed();
|
|
952 |
static TUint32 IdleGenerationCount();
|
|
953 |
|
|
954 |
// Debugger support
|
|
955 |
typedef void (*TRescheduleCallback)(NThread*);
|
|
956 |
IMPORT_C static void SchedulerHooks(TLinAddr& aStart, TLinAddr& aEnd);
|
|
957 |
IMPORT_C static void InsertSchedulerHooks();
|
|
958 |
IMPORT_C static void RemoveSchedulerHooks();
|
|
959 |
IMPORT_C static void SetRescheduleCallback(TRescheduleCallback aCallback);
|
|
960 |
};
|
|
961 |
|
|
962 |
|
|
963 |
/** Create a fast semaphore
|
|
964 |
|
|
965 |
@publishedPartner
|
|
966 |
@released
|
|
967 |
*/
|
|
968 |
inline NFastSemaphore::NFastSemaphore(NThreadBase* aThread)
|
|
969 |
: iCount(0),
|
|
970 |
iOwningThread(aThread ? aThread : (NThreadBase*)NKern::CurrentThread())
|
|
971 |
{
|
|
972 |
}
|
|
973 |
|
|
974 |
|
|
975 |
#endif
|