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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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// template\template_assp\template_assp.cpp
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//
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//
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#include <template_assp_priv.h>
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//----------------------------------------------------------------------------
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// Initialisation
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void TTemplate::Init3()
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//
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// Phase 3 initialisation
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//
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{
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//
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// TO DO: (optional)
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//
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// Initialise any TTemplate class data members here
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//
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// Use assp-specific nano wait implementation
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Kern::SetNanoWaitHandler(NanoWait);
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}
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EXPORT_C TMachineStartupType TTemplate::StartupReason()
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//
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// Read and return the Startup reason of the Hardware
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//
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{
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//
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// TO DO: (optional)
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//
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// Read the Reset reason from the hardware register map it to one of TMachineStartupType enumerated values
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// and return this
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//
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return EStartupCold; // EXAMPLE ONLY
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}
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EXPORT_C TInt TTemplate::CpuVersionId()
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//
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// Read and return the the CPU ID
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//
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{
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//
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// TO DO: (optional)
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//
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// Read the CPU identification register (if one exists) mask off redundant bits and return this
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//
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return 0; // EXAMPLE ONLY
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}
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EXPORT_C TUint TTemplate::DebugPortAddr()
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//
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// Return Linear base address of debug UART (as selected in obey file or with eshell debugport command).
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//
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{
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//
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// TO DO: (optional)
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//
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// Read the iDebugPort field of the SuperPage, map the result to the corresponding Serial Port Linear
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// address and return this, like the following EXAMPLE ONLY:
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//
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TUint debugPort;
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switch (Kern::SuperPage().iDebugPort)
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{
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case 1:
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debugPort=KHwBaseSerial1;
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break;
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case 2:
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debugPort=KHwBaseSerial2;
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break;
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case 3:
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debugPort=KHwBaseSerial3;
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break;
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default:
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debugPort=KHwBaseSerial1;
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break;
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}
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return debugPort;
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}
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EXPORT_C TUint TTemplate::ProcessorPeriodInPs()
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//
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// Return CPU clock period in picoseconds
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//
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{
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//
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// TO DO: (optional)
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//
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// Read the CPU clock speed and return its period in picoseconds. If only a limited range of speeds is possible
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// it is preferable to use the masked speed reading as an index into a look up table containing the corresponding
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// period
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//
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return 0; // EXAMPLE ONLY
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}
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EXPORT_C void TTemplate::SetIntMask(TUint aValue)
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//
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// Set the Hardware Interrupt masks
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//
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{
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// the following is EXAMPLE ONLY
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TInt irq=NKern::DisableAllInterrupts();
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AsspRegister::Write32(KHwInterruptsMaskSet, aValue);
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AsspRegister::Write32(KHwInterruptsMaskClear, ~aValue);
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NKern::RestoreInterrupts(irq);
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}
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EXPORT_C void TTemplate::ModifyIntMask(TUint aClearMask,TUint aSetMask)
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//
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// Modify the Hardware Interrupt masks
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//
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{
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// the following is EXAMPLE ONLY
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TInt irq=NKern::DisableAllInterrupts();
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AsspRegister::Write32(KHwInterruptsMaskSet, aSetMask);
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AsspRegister::Write32(KHwInterruptsMaskClear, ~aClearMask);
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NKern::RestoreInterrupts(irq);
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}
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EXPORT_C TUint TTemplate::IntsPending()
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//
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// Return the state of pending interrupts
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//
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{
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// the following is EXAMPLE ONLY
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return(AsspRegister::Read32(KHwInterruptsIrqPending));
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}
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EXPORT_C TUint TTemplate::RtcData()
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//
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// Return the current time of the RTC
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//
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{
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//
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// TO DO: (optional)
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//
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// Read the RTC current time register and return this time
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//
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return 0; // EXAMPLE ONLY
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}
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EXPORT_C void TTemplate::SetRtcData(TUint aValue)
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//
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// Set the RTC time
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//
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{
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//
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// TO DO: (optional)
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//
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// Set the RTC current time with aValue (may need formatting appropriately)
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//
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}
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EXPORT_C TPhysAddr TTemplate::VideoRamPhys()
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//
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// Return the physical address of the video RAM
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//
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{
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return TemplateAssp::VideoRamPhys;
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}
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