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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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// e32test\misc\t_ipccpy.cpp
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// Overview:
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// Test and benchmark IPC reading, writing, copying.
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// API Information:
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// RBusLogicalChannel, DLogicalChannel.
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// Details:
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// - Load the specified logical device driver, open a channel to it, allocate
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// a cell of specified size from the current thread's heap, get Kernel HAL
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// memory model information.
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// - Make a synchronous Kernel Executive type request to the logical channel
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// to write specified data to the buffer, read the data and calculate the
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// time taken for writing and reading the data. Benchmark the time required
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// to for 1000 64K user->kernel and kernel->user copies.
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// - Create a chunk, get a pointer to the base of the chunk's reserved region,
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// create a server thread, establish a session with the server, signal
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// completion of the client's request when message is received, read,
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// write specified bits and check it is as expected.
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// Platforms/Drives/Compatibility:
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// All.
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// Assumptions/Requirement/Pre-requisites:
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// Failures and causes:
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// Base Port information:
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//
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//
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#include <e32test.h>
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#include "d_ipccpy.h"
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#include "u32std.h"
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#include <e32kpan.h>
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#include "../mmu/mmudetect.h"
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#include <hal.h>
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RTest test(_L("T_IPCCPY"));
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TUint8* Buffer;
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TUint8* Disc;
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RIpcCpy Ipccpy;
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TUint32 MainId;
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TUint8 Bss[4096];
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TUint8* Kern;
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TUint8* RamDrive;
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TUint8* Nonexistent;
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TUint8* Unaligned=Bss+1;
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TInt CloseTime;
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TLinAddr HwChunkAddr[RIpcCpy::ENumHwChunkTypes];
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TPtr8 UserDes(Buffer+96,96,96);
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void SetupAddresses()
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{
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Kern=KernData();
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TUint32 mm_attr=MemModelAttributes();
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TUint32 mm_type=mm_attr & EMemModelTypeMask;
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switch (mm_type)
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{
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case EMemModelTypeDirect:
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RamDrive=(TUint8*)0; // not used anyway
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Nonexistent=(TUint8*)0xa8000000;
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break;
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case EMemModelTypeMoving:
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RamDrive=(TUint8*)0x40000000;
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Nonexistent=(TUint8*)0x60f00000;
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break;
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case EMemModelTypeMultiple:
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RamDrive=(TUint8*)0xa0000000;
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Nonexistent=(TUint8*)0xfe000000;
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break;
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case EMemModelTypeFlexible:
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RamDrive=(TUint8*)0;
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Nonexistent=(TUint8*)0x8ff00000;
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break;
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case EMemModelTypeEmul:
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RamDrive=(TUint8*)0; // not used anyway
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Nonexistent=(TUint8*)0xf0000000;
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break;
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default:
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test(0);
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break;
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}
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new (&UserDes) TPtr8(Buffer+96,96,96);
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Ipccpy.HardwareChunks(HwChunkAddr,UserDes);
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test.Printf(_L("Buffer=%08x\n"),Buffer);
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test.Printf(_L("Bss=%08x\n"),Bss);
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test.Printf(_L("Kern=%08x\n"),Kern);
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test.Printf(_L("RamDrive=%08x\n"),RamDrive);
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test.Printf(_L("Nonexistent=%08x\n"),Nonexistent);
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test.Printf(_L("Unaligned=%08x\n"),Unaligned);
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test.Printf(_L("HwChunkSupRw=%08x\n"),HwChunkAddr[RIpcCpy::EHwChunkSupRw]);
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test.Printf(_L("HwChunkUserRw=%08x\n"),HwChunkAddr[RIpcCpy::EHwChunkUserRw]);
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test.Printf(_L("HwChunkUserRo=%08x\n"),HwChunkAddr[RIpcCpy::EHwChunkUserRo]);
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}
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_LIT(KLitKernExec,"KERN-EXEC");
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void TestEq(TInt a, TInt b, TInt l);
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void Test(TBool c, TInt l);
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#define TESTEQ(a,b) TestEq((a),(b),__LINE__)
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#define TEST(c) Test((c),__LINE__)
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void TestEq(TInt a, TInt b, TInt l)
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{
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if (a!=b)
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{
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if (TUint32(RThread().Id())==MainId)
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{
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test.Printf(_L("Line %d a=%d, b=%d\n"),l,a,b);
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test(0);
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}
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else
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User::Panic(_L("TESTEQ"),l);
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}
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}
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void Test(TBool c, TInt l)
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{
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if (!c)
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{
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if (TUint32(RThread().Id())==MainId)
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{
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test.Printf(_L("Line %d FAIL\n"),l);
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test(0);
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}
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else
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User::Panic(_L("TEST"),l);
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}
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}
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struct SIpcTestInfo
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{
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const TAny* iLocal;
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const TAny* iRemote;
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TInt iOffset;
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TInt iMode; // bit 0 = 1 for 16 bit, bit 1 = 1 for write
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};
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class RLocalSession : public RSessionBase
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{
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public:
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TInt Connect(RServer2 aSrv,TRequestStatus* aStat)
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{return CreateSession(aSrv,TVersion(),-1,EIpcSession_Unsharable,0,aStat);}
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void Test(const TAny* aRemote)
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{Send(0,TIpcArgs((const TDesC8*)aRemote,(const TDesC16*)aRemote,(TDes8*)aRemote,(TDes16*)aRemote));}
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void Wait()
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{SendReceive(1);}
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};
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RServer2 IpcServer;
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TInt IpcTestFn(TAny* aInfo)
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{
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SIpcTestInfo& i=*(SIpcTestInfo*)aInfo;
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if (IpcServer.Handle())
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IpcServer.Close();
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TESTEQ(IpcServer.CreateGlobal(KNullDesC),KErrNone);
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RLocalSession sess;
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TRequestStatus stat;
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TESTEQ(sess.Connect(IpcServer,&stat),KErrNone);
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RMessage2 m;
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IpcServer.Receive(m);
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m.Complete(KErrNone); // connect
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User::WaitForRequest(stat); // connection message report
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sess.Test(i.iRemote);
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IpcServer.Receive(m);
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TInt r=KMinTInt;
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switch (i.iMode)
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{
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case 0:
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{ // read 8 bit
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TDesC8* pR=(TDesC8*)i.iRemote;
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TDes8* pL=(TDes8*)i.iLocal;
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r=m.Read(0,*pL,i.iOffset);
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if (r==KErrNone)
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{
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TESTEQ(pL->Length(),pR->Length()-i.iOffset);
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TEST(*pL==pR->Mid(i.iOffset));
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}
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break;
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}
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case 1:
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{ // read 16 bit
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TDesC16* pR=(TDesC16*)i.iRemote;
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TDes16* pL=(TDes16*)i.iLocal;
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r=m.Read(1,*pL,i.iOffset);
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if (r==KErrNone)
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{
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TESTEQ(pL->Length(),pR->Length()-i.iOffset);
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TEST(*pL==pR->Mid(i.iOffset));
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}
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break;
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}
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case 2:
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{ // write 8 bit
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TDes8* pR=(TDes8*)i.iRemote;
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TDesC8* pL=(TDesC8*)i.iLocal;
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r=m.Write(2,*pL,i.iOffset);
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if (r==KErrNone)
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{
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TESTEQ(pR->Length(),pL->Length()+i.iOffset);
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TEST(*pL==pR->Mid(i.iOffset));
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}
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break;
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}
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case 3:
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{ // write 16 bit
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TDes16* pR=(TDes16*)i.iRemote;
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TDesC16* pL=(TDesC16*)i.iLocal;
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r=m.Write(3,*pL,i.iOffset);
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if (r==KErrNone)
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{
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TESTEQ(pR->Length(),pL->Length()+i.iOffset);
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TEST(*pL==pR->Mid(i.iOffset));
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}
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break;
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}
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default:
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User::Panic(_L("MODE"),i.iMode);
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}
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m.Complete(0);
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sess.Close();
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IpcServer.Close();
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return r;
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}
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void _DoIpcTest(const TAny* aLocal, const TAny* aRemote, TInt aOffset, TInt aMode, const TDesC* aPanicCat, TInt aResult, TInt aLine)
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{
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test.Printf(_L("Line %d\n"),aLine);
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SIpcTestInfo info;
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info.iLocal=aLocal;
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info.iRemote=aRemote;
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info.iOffset=aOffset;
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info.iMode=aMode;
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if (!aPanicCat)
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{
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// do test in this thread
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TInt r=IpcTestFn(&info);
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TESTEQ(r,aResult);
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return;
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}
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TBool jit=User::JustInTime();
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RThread t;
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TInt r=t.Create(KNullDesC(),IpcTestFn,0x2000,NULL,&info);
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test(r==KErrNone);
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TRequestStatus s;
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t.Logon(s);
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User::SetJustInTime(EFalse);
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t.Resume();
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User::WaitForRequest(s);
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User::SetJustInTime(jit);
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test(t.ExitType()==EExitPanic);
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test(t.ExitCategory()==*aPanicCat);
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TESTEQ(t.ExitReason(),aResult);
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t.Close();
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}
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void DoIpcTest(const TUint8* aLocal, const TUint8* aRemote, TInt aLength, TInt aMode, const TDesC* aPanicCat, TInt aResult, TInt aLine)
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{
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TPtr8 local((TUint8*)aLocal,aLength,aLength);
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TPtr8 remote((TUint8*)aRemote,aLength,aLength);
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_DoIpcTest(&local,&remote,0,aMode,aPanicCat,aResult,aLine);
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}
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void DoIpcTest(const TUint8* aLocal, const TDesC8& aRemote, TInt aLength, TInt aMode, const TDesC* aPanicCat, TInt aResult, TInt aLine)
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{
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TPtr8 local((TUint8*)aLocal,aLength,aLength);
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_DoIpcTest(&local,&aRemote,0,aMode,aPanicCat,aResult,aLine);
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}
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void TestIpcCopyErrors()
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{
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RChunk c;
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TInt r=c.CreateDisconnectedLocal(0,0,0x500000);
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test(r==KErrNone);
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r=c.Commit(0,0x1000);
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test(r==KErrNone);
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r=c.Commit(0x2000,0x1000);
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test(r==KErrNone);
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r=c.Commit(0x3ff000,0x1000);
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test(r==KErrNone);
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Disc=c.Base();
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test.Printf(_L("Disc=%08x\n"),Disc);
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DoIpcTest(Buffer,(const TUint8*)&TestEq,100,0,NULL,KErrNone,__LINE__);
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DoIpcTest(Buffer,(const TUint8*)&TestEq,100,2,NULL,KErrBadDescriptor,__LINE__);
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DoIpcTest((const TUint8*)&TestEq,Buffer,100,2,NULL,KErrNone,__LINE__);
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DoIpcTest((const TUint8*)&TestEq,Buffer,100,0,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Buffer,Nonexistent,100,0,NULL,KErrBadDescriptor,__LINE__);
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DoIpcTest(Buffer,Nonexistent,100,2,NULL,KErrBadDescriptor,__LINE__);
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DoIpcTest(Nonexistent,Buffer,100,2,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Nonexistent,Buffer,100,0,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Buffer,Unaligned,100,0,NULL,KErrNone,__LINE__);
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DoIpcTest(Buffer,Unaligned,100,2,NULL,KErrNone,__LINE__);
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DoIpcTest(Unaligned,Buffer,100,2,NULL,KErrNone,__LINE__);
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DoIpcTest(Unaligned,Buffer,100,0,NULL,KErrNone,__LINE__);
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DoIpcTest(Disc+4001,Buffer,95,0,NULL,KErrNone,__LINE__);
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if (HaveVirtMem())
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DoIpcTest(Disc+4001,Buffer,96,0,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Buffer,Disc+4001,95,0,NULL,KErrNone,__LINE__);
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if (HaveVirtMem())
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DoIpcTest(Buffer,Disc+4001,96,0,NULL,KErrBadDescriptor,__LINE__);
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TPtr8* pdes;
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if (HaveVirtMem())
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{
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// test descriptor stored stradling chunk end...
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pdes = (TPtr8*)(Disc+0x3ffff4);
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memcpy(pdes,&UserDes,12);
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DoIpcTest(Buffer,*pdes,pdes->Size(),0,NULL,KErrNone,__LINE__);
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pdes = (TPtr8*)(Disc+0x3ffff8);
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memcpy(pdes,&UserDes,8);
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DoIpcTest(Buffer,*pdes,pdes->Size(),0,NULL,KErrBadDescriptor,__LINE__);
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pdes = (TPtr8*)(Disc+0x3ffffc);
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memcpy(pdes,&UserDes,4);
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DoIpcTest(Buffer,*pdes,pdes->Size(),0,NULL,KErrBadDescriptor,__LINE__);
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r=c.Commit(0x400000,0x1000);
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test(r==KErrNone);
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pdes = (TPtr8*)(Disc+0x3ffff4);
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memcpy(pdes,&UserDes,12);
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DoIpcTest(Buffer,*pdes,pdes->Size(),0,NULL,KErrNone,__LINE__);
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pdes = (TPtr8*)(Disc+0x3ffff8);
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memcpy(pdes,&UserDes,12);
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DoIpcTest(Buffer,*pdes,pdes->Size(),0,NULL,KErrNone,__LINE__);
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pdes = (TPtr8*)(Disc+0x3ffffc);
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memcpy(pdes,&UserDes,12);
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DoIpcTest(Buffer,*pdes,pdes->Size(),0,NULL,KErrNone,__LINE__);
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}
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if (HaveMultAddr())
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{
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if(RamDrive)
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{
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DoIpcTest(Disc+0x100000,Buffer,96,0,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Buffer,Disc+0x100000,96,0,NULL,KErrBadDescriptor,__LINE__);
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DoIpcTest(RamDrive,Buffer,4,0,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Buffer,RamDrive,4,0,NULL,KErrBadDescriptor,__LINE__);
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DoIpcTest(RamDrive,Buffer,4,2,&KLitKernExec,ECausedException,__LINE__);
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DoIpcTest(Buffer,RamDrive,4,2,NULL,KErrBadDescriptor,__LINE__);
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}
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// if memory alising happens during IPC then the memory at 'Disc' would be aliased
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// at KIPCAliasAddress and so would not be protected by MMU permission checks.
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// However, the kernel should still prevent this, to avoid degrading process
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// protection for memory in other parts of the alias region.
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#ifdef __CPU_X86
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const TUint8* KIPCAliasAddress;
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if((MemModelAttributes()&EMemModelTypeMask) == EMemModelTypeFlexible)
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KIPCAliasAddress = (TUint8*)0x7e000000;
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else
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KIPCAliasAddress = (TUint8*)0xc0400000;
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#else
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const TUint8* KIPCAliasAddress = (TUint8*)0x00200000;
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|
367 |
#endif
|
|
368 |
DoIpcTest(KIPCAliasAddress,Disc,4,0,&KLitKernExec,ECausedException,__LINE__);
|
|
369 |
DoIpcTest(Disc,KIPCAliasAddress,4,0,NULL,KErrBadDescriptor,__LINE__);
|
|
370 |
DoIpcTest(KIPCAliasAddress,Disc,4,2,&KLitKernExec,ECausedException,__LINE__);
|
|
371 |
DoIpcTest(Disc,KIPCAliasAddress,4,2,NULL,KErrBadDescriptor,__LINE__);
|
|
372 |
}
|
|
373 |
|
|
374 |
if (HaveIPCKernProt())
|
|
375 |
{
|
|
376 |
DoIpcTest(Kern,Buffer,96,0,&KLitKernExec,ECausedException,__LINE__);
|
|
377 |
DoIpcTest(Buffer,Kern,96,0,NULL,KErrBadDescriptor,__LINE__);
|
|
378 |
TUint8* addrRW = (TUint8*)HwChunkAddr[RIpcCpy::EHwChunkSupRw];
|
|
379 |
if(addrRW)
|
|
380 |
{
|
|
381 |
DoIpcTest(Buffer,*(TDes8*)addrRW,96,0,NULL,KErrBadDescriptor,__LINE__);
|
|
382 |
DoIpcTest(Buffer,*(TDes8*)addrRW,96,2,NULL,KErrBadDescriptor,__LINE__);
|
|
383 |
DoIpcTest(addrRW+96,Buffer,96,0,&KLitKernExec,ECausedException,__LINE__);
|
|
384 |
DoIpcTest(Buffer,addrRW,96,0,NULL,KErrBadDescriptor,__LINE__);
|
|
385 |
DoIpcTest(addrRW+96,Buffer,96,2,&KLitKernExec,ECausedException,__LINE__);
|
|
386 |
DoIpcTest(Buffer,addrRW,96,2,NULL,KErrBadDescriptor,__LINE__);
|
|
387 |
}
|
|
388 |
}
|
|
389 |
|
|
390 |
if((MemModelAttributes()&EMemModelTypeMask) == EMemModelTypeMultiple
|
|
391 |
|| (MemModelAttributes()&EMemModelTypeMask) == EMemModelTypeFlexible
|
|
392 |
)
|
|
393 |
{
|
|
394 |
// On multiple memory model, test IPC to Hardware Chunks.
|
|
395 |
// IPC to hardware chunks not supported on Moving Memory
|
|
396 |
TUint8* addrRW = (TUint8*)HwChunkAddr[RIpcCpy::EHwChunkUserRw];
|
|
397 |
if(addrRW)
|
|
398 |
{
|
|
399 |
DoIpcTest(Buffer,*(TDes8*)addrRW,96,0,NULL,KErrNone,__LINE__);
|
|
400 |
DoIpcTest(Buffer,*(TDes8*)addrRW,96,2,NULL,KErrNone,__LINE__);
|
|
401 |
DoIpcTest(addrRW+96,Buffer,96,0,NULL,KErrNone,__LINE__);
|
|
402 |
DoIpcTest(Buffer,addrRW,96,0,NULL,KErrNone,__LINE__);
|
|
403 |
DoIpcTest(addrRW+96,Buffer,96,2,NULL,KErrNone,__LINE__);
|
|
404 |
DoIpcTest(Buffer,addrRW,96,2,NULL,KErrNone,__LINE__);
|
|
405 |
DoIpcTest(addrRW+96,addrRW,96,0,NULL,KErrNone,__LINE__);
|
|
406 |
DoIpcTest(addrRW+96,addrRW,96,2,NULL,KErrNone,__LINE__);
|
|
407 |
}
|
|
408 |
TUint8* addrRO = (TUint8*)HwChunkAddr[RIpcCpy::EHwChunkUserRo];
|
|
409 |
if(addrRO && HaveWriteProt())
|
|
410 |
{
|
|
411 |
DoIpcTest(Buffer,*(TDes8*)addrRO,96,0,NULL,KErrNone,__LINE__);
|
|
412 |
DoIpcTest(Buffer,*(TDes8*)addrRO,96,2,&KLitKernExec,EBadIpcDescriptor,__LINE__);
|
|
413 |
DoIpcTest(addrRO+96,Buffer,96,0,&KLitKernExec,ECausedException,__LINE__);
|
|
414 |
DoIpcTest(Buffer,addrRO,96,0,NULL,KErrNone,__LINE__);
|
|
415 |
DoIpcTest(addrRO+96,Buffer,96,2,NULL,KErrNone,__LINE__);
|
|
416 |
DoIpcTest(Buffer,addrRO,96,2,NULL,KErrBadDescriptor,__LINE__);
|
|
417 |
DoIpcTest(addrRW+96,addrRO,96,0,NULL,KErrNone,__LINE__);
|
|
418 |
DoIpcTest(addrRW+96,addrRW,96,2,NULL,KErrNone,__LINE__);
|
|
419 |
DoIpcTest(addrRO+96,addrRO,96,0,&KLitKernExec,ECausedException,__LINE__);
|
|
420 |
DoIpcTest(addrRO+96,addrRW,96,2,NULL,KErrNone,__LINE__);
|
|
421 |
}
|
|
422 |
}
|
|
423 |
|
|
424 |
c.Close();
|
|
425 |
}
|
|
426 |
|
|
427 |
RMessage2 Msg1, Msg2;
|
|
428 |
|
|
429 |
TInt SendAndExit(TAny* aPtr)
|
|
430 |
{
|
|
431 |
RLocalSession sess;
|
|
432 |
TInt r=sess.Connect(IpcServer,NULL);
|
|
433 |
if (r!=KErrNone)
|
|
434 |
return r;
|
|
435 |
sess.Test(aPtr);
|
|
436 |
sess.Wait();
|
|
437 |
sess.Close();
|
|
438 |
User::AfterHighRes(1000*CloseTime);
|
|
439 |
Msg1.Complete(0); // complete my own message! - this removes message reference to thread
|
|
440 |
return 0;
|
|
441 |
}
|
|
442 |
|
|
443 |
void TestIpcAsyncClose()
|
|
444 |
{
|
|
445 |
|
|
446 |
// Create a 16MB chunk
|
|
447 |
const TInt desSize = 8*1024*1024;
|
|
448 |
RChunk chunk;
|
|
449 |
test(chunk.CreateLocal(2 * desSize, 2 * desSize) == KErrNone);
|
|
450 |
test(chunk.Adjust(2 * desSize) == KErrNone);
|
|
451 |
|
|
452 |
TUint8* bigBuf=chunk.Base();
|
|
453 |
test(bigBuf!=NULL);
|
|
454 |
TUint8* bigBuf2=chunk.Base() + desSize;
|
|
455 |
test(bigBuf2!=NULL);
|
|
456 |
TPtr8 bigBufPtr(bigBuf, desSize, desSize);
|
|
457 |
TPtr8 bigBufPtr2(bigBuf2, 0, desSize);
|
|
458 |
|
|
459 |
if (IpcServer.Handle())
|
|
460 |
IpcServer.Close();
|
|
461 |
TESTEQ(IpcServer.CreateGlobal(KNullDesC),KErrNone);
|
|
462 |
|
|
463 |
RThread t;
|
|
464 |
TInt r=t.Create(KNullDesC,SendAndExit,0x1000,NULL,&bigBufPtr);
|
|
465 |
test(r==KErrNone);
|
|
466 |
TFullName fn(t.FullName());
|
|
467 |
TRequestStatus s;
|
|
468 |
t.Logon(s);
|
|
469 |
t.SetPriority(EPriorityMuchMore);
|
|
470 |
t.Resume();
|
|
471 |
|
|
472 |
IpcServer.Receive(Msg1); // connect
|
|
473 |
Msg1.Complete(KErrNone);
|
|
474 |
IpcServer.Receive(Msg1); // test message
|
|
475 |
IpcServer.Receive(Msg2); // wait/synch message
|
|
476 |
TUint32 initial = User::NTickCount();
|
|
477 |
r=Msg1.Read(2,bigBufPtr2,0); // arg2 is writable 8 bit descriptor
|
|
478 |
TUint32 final = User::NTickCount();
|
|
479 |
TUint32 elapsed = final - initial;
|
|
480 |
if (elapsed<3)
|
|
481 |
test.Printf(_L("*** WARNING! The big IPC only took %dms, which means the next test might fail! \n"),elapsed);
|
|
482 |
else
|
|
483 |
test.Printf(_L("Big IPC took %dms\n"),elapsed);
|
|
484 |
CloseTime = (TInt)(elapsed>>2);
|
|
485 |
Msg2.Complete(0);
|
|
486 |
IpcServer.Receive(Msg2); // disconnect
|
|
487 |
TUint32 disconnect = User::NTickCount();
|
|
488 |
|
|
489 |
// We expect this IPC read to fail part way through
|
|
490 |
r=Msg1.Read(2,bigBufPtr2,0); // arg2 is writable 8 bit descriptor
|
|
491 |
test.Printf(_L("counters: initial=%d final=%d disconnect=%d current=%d\n"),initial,final,disconnect,User::NTickCount());
|
|
492 |
test.Printf(_L("2nd Big IPC returned %d\n"),r);
|
|
493 |
test(r==KErrDied);
|
|
494 |
test(Msg1.IsNull());
|
|
495 |
Msg2.Complete(0); // complete session closure as well
|
|
496 |
User::WaitForRequest(s);
|
|
497 |
test(s==KErrNone);
|
|
498 |
CLOSE_AND_WAIT(t);
|
|
499 |
test(t.Open(fn)==KErrNotFound);
|
|
500 |
IpcServer.Close();
|
|
501 |
|
|
502 |
// t already closed
|
|
503 |
// User::Free(bigBuf);
|
|
504 |
// User::Free(bigBuf2);
|
|
505 |
chunk.Close();
|
|
506 |
}
|
|
507 |
|
|
508 |
void BenchmarkTest()
|
|
509 |
{
|
|
510 |
TAny* bigbuf = User::Alloc(65536);
|
|
511 |
test(bigbuf != NULL);
|
|
512 |
TInt i;
|
|
513 |
TUint32 initial, final;
|
|
514 |
initial = User::NTickCount();
|
|
515 |
for (i=0; i<1000; ++i)
|
|
516 |
Ipccpy.BigWrite(bigbuf, 0);
|
|
517 |
final = User::NTickCount();
|
|
518 |
TUint32 wcal = final - initial;
|
|
519 |
initial = User::NTickCount();
|
|
520 |
for (i=0; i<1000; ++i)
|
|
521 |
Ipccpy.BigWrite(bigbuf, 65536);
|
|
522 |
final = User::NTickCount();
|
|
523 |
TUint32 write = final - initial;
|
|
524 |
test.Printf(_L("64K user->kernel copy takes %d us\n"), write - wcal);
|
|
525 |
initial = User::NTickCount();
|
|
526 |
for (i=0; i<1000; ++i)
|
|
527 |
Ipccpy.BigRead(bigbuf, 0);
|
|
528 |
final = User::NTickCount();
|
|
529 |
TUint32 rcal = final - initial;
|
|
530 |
initial = User::NTickCount();
|
|
531 |
for (i=0; i<1000; ++i)
|
|
532 |
Ipccpy.BigRead(bigbuf, 65536);
|
|
533 |
final = User::NTickCount();
|
|
534 |
TUint32 read = final - initial;
|
|
535 |
test.Printf(_L("64K kernel->user copy takes %d us\n"), read - rcal);
|
|
536 |
User::Free(bigbuf);
|
|
537 |
// User::After(10*1000*1000);
|
|
538 |
}
|
|
539 |
|
|
540 |
|
|
541 |
RMessage2 IpcMesage;
|
|
542 |
const TInt KTestChunkSize = 1024*1024;
|
|
543 |
const TInt KReadSize = 4096;
|
|
544 |
|
|
545 |
TInt IpcMultipleAliasesThread(TAny* aBuffer)
|
|
546 |
{
|
|
547 |
TBuf8<KReadSize> data;
|
|
548 |
TAny** dataStart = (TAny**)data.Ptr();
|
|
549 |
TAny** dataEnd = (TAny**)(data.Ptr()+KReadSize-sizeof(TAny*));
|
|
550 |
for(;;)
|
|
551 |
{
|
|
552 |
TInt offset;
|
|
553 |
for(offset=0; offset<KTestChunkSize; offset+=KReadSize)
|
|
554 |
{
|
|
555 |
TInt r = IpcMesage.Read(0,data,offset);
|
|
556 |
if(r!=KErrNone)
|
|
557 |
return r;
|
|
558 |
if(data.Size()!=KReadSize)
|
|
559 |
return 1;
|
|
560 |
TAny* expected = (TAny*)((TInt)aBuffer+offset);
|
|
561 |
if(*dataStart != expected)
|
|
562 |
{
|
|
563 |
RDebug::Printf("Offset=%x, expected %x but read %x",offset,expected,*dataStart);
|
|
564 |
return 2;
|
|
565 |
}
|
|
566 |
expected = (TAny*)((TInt)aBuffer+offset+KReadSize-sizeof(TAny*));
|
|
567 |
if(*dataEnd != expected)
|
|
568 |
{
|
|
569 |
RDebug::Printf("Offset=%x, expected %x but read %x",offset,expected,*dataEnd);
|
|
570 |
return 3;
|
|
571 |
}
|
|
572 |
}
|
|
573 |
}
|
|
574 |
}
|
|
575 |
|
|
576 |
/*
|
|
577 |
This tests exercises the situation where multiple threads are doing IPC simultaneousely.
|
|
578 |
On the Multiple Memory Model, this aims to test the per-thread memory aliasing code.
|
|
579 |
(DMemModelThread::Alias and company)
|
|
580 |
*/
|
|
581 |
void TestIpcMultipleThreads()
|
|
582 |
{
|
|
583 |
test.Start(_L("Test Multiple Threads IPC"));
|
|
584 |
|
|
585 |
// create chunk for threads to do IPC from...
|
|
586 |
RChunk chunk;
|
|
587 |
TESTEQ(chunk.CreateLocal(KTestChunkSize,KTestChunkSize),KErrNone);
|
|
588 |
TAny** buffer = (TAny**)chunk.Base();
|
|
589 |
TAny** bufferEnd = (TAny**)((TInt)buffer+KTestChunkSize);
|
|
590 |
for(; buffer<bufferEnd; ++buffer)
|
|
591 |
*buffer=buffer;
|
|
592 |
|
|
593 |
// create a server message which test threads can use to do IPC memory operations
|
|
594 |
if (IpcServer.Handle())
|
|
595 |
IpcServer.Close();
|
|
596 |
TESTEQ(IpcServer.CreateGlobal(KNullDesC),KErrNone);
|
|
597 |
RLocalSession sess;
|
|
598 |
TRequestStatus stat;
|
|
599 |
TESTEQ(sess.Connect(IpcServer,&stat),KErrNone);
|
|
600 |
RMessage2 m;
|
|
601 |
IpcServer.Receive(m);
|
|
602 |
m.Complete(KErrNone); // connect
|
|
603 |
User::WaitForRequest(stat); // connection message report
|
|
604 |
TAny* ptrMem = User::Alloc(0x2000);
|
|
605 |
TPtr8* pptr = (TPtr8*)(((TInt)ptrMem&~0xfff)+0x1000-sizeof(TInt));
|
|
606 |
new (pptr) TPtr8(chunk.Base(),KTestChunkSize,KTestChunkSize); // create a TPtr8 which straddles a page boundary
|
|
607 |
sess.Test(pptr);
|
|
608 |
IpcServer.Receive(IpcMesage);
|
|
609 |
|
|
610 |
// create some test threads...
|
|
611 |
const TInt KNumIpcThreads = 10;
|
|
612 |
RThread threads[KNumIpcThreads];
|
|
613 |
TRequestStatus stats[KNumIpcThreads];
|
|
614 |
TInt i;
|
|
615 |
for(i=0; i<KNumIpcThreads; i++)
|
|
616 |
{
|
|
617 |
TESTEQ(threads[i].Create(KNullDesC,IpcMultipleAliasesThread,KReadSize+0x1000,&User::Allocator(),chunk.Base()),KErrNone);
|
|
618 |
threads[i].Logon(stats[i]);
|
|
619 |
}
|
|
620 |
test.Printf(_L("Resuming threads...\n"));
|
|
621 |
for(i=0; i<KNumIpcThreads; i++)
|
|
622 |
threads[i].Resume();
|
|
623 |
|
|
624 |
User::After(10*1000000);
|
|
625 |
for(i=0; i<KNumIpcThreads; i++)
|
|
626 |
{
|
|
627 |
test(stats[i]==KRequestPending); // theads should still be running
|
|
628 |
}
|
|
629 |
|
|
630 |
// close chunk whilst test threads are still doing IPC...
|
|
631 |
test.Printf(_L("Closing chunk...\n"));
|
|
632 |
chunk.Close();
|
|
633 |
for(i=0; i<KNumIpcThreads; i++)
|
|
634 |
{
|
|
635 |
User::WaitForRequest(stats[i]);
|
|
636 |
TInt r=stats[i].Int();
|
|
637 |
test.Printf(_L("Thread %d result = %d\n"),i,r);
|
|
638 |
test(r==KErrBadDescriptor);
|
|
639 |
}
|
|
640 |
|
|
641 |
IpcServer.Close();
|
|
642 |
User::Free(ptrMem);
|
|
643 |
test.End();
|
|
644 |
}
|
|
645 |
|
|
646 |
GLDEF_C TInt E32Main()
|
|
647 |
{
|
|
648 |
MainId=TUint32(RThread().Id());
|
|
649 |
// RThread().SetPriority(EPriorityAbsoluteForeground);
|
|
650 |
test.Title();
|
|
651 |
test.Start(_L("Load LDD"));
|
|
652 |
TInt r=User::LoadLogicalDevice(_L("D_IPCCPY"));
|
|
653 |
test(r==KErrNone || r==KErrAlreadyExists);
|
|
654 |
test.Next(_L("Open channel"));
|
|
655 |
r=Ipccpy.Open();
|
|
656 |
test(r==KErrNone);
|
|
657 |
test.Next(_L("Allocate heap buffer"));
|
|
658 |
Buffer=(TUint8*)User::Alloc(4096);
|
|
659 |
test(Buffer!=NULL);
|
|
660 |
SetupAddresses();
|
|
661 |
|
|
662 |
BenchmarkTest();
|
|
663 |
|
|
664 |
TestIpcCopyErrors();
|
|
665 |
TestIpcAsyncClose();
|
|
666 |
TestIpcMultipleThreads();
|
|
667 |
|
|
668 |
FOREVER
|
|
669 |
{
|
|
670 |
TRequestStatus s;
|
|
671 |
Mem::Fill(Buffer,272,0xcd);
|
|
672 |
TPtr8 ptr(Buffer,0,272);
|
|
673 |
Ipccpy.IpcCpy(s,ptr);
|
|
674 |
User::WaitForRequest(s);
|
|
675 |
TInt x=s.Int();
|
|
676 |
if (x<0)
|
|
677 |
{
|
|
678 |
test.Printf(_L("Error %d\n"),x);
|
|
679 |
test(0);
|
|
680 |
}
|
|
681 |
TInt src_offset=x&3;
|
|
682 |
TInt dest_offset=(x>>2)&3;
|
|
683 |
TInt length=(x>>4)+1;
|
|
684 |
TInt err=-1;
|
|
685 |
TInt i;
|
|
686 |
for (i=0; i<dest_offset && err<0; ++i)
|
|
687 |
{
|
|
688 |
if (Buffer[i]!=0xcd)
|
|
689 |
err=i;
|
|
690 |
}
|
|
691 |
TUint8 v=(TUint8)src_offset;
|
|
692 |
for (i=0; i<length && err<0; ++i)
|
|
693 |
{
|
|
694 |
++v;
|
|
695 |
if (Buffer[i+dest_offset]!=v)
|
|
696 |
err=i+dest_offset;
|
|
697 |
}
|
|
698 |
for (i=dest_offset+length; i<272 && err<0; ++i)
|
|
699 |
{
|
|
700 |
if (Buffer[i]!=0xcd)
|
|
701 |
err=i;
|
|
702 |
}
|
|
703 |
if (err>=0)
|
|
704 |
{
|
|
705 |
test.Printf(_L("Sequence number %03x\nSrcOffset %d, DestOffset %d, Length %d\n"),x,src_offset,dest_offset,length);
|
|
706 |
test.Printf(_L("First error at %d"),err);
|
|
707 |
for (i=0; i<272; i+=16)
|
|
708 |
{
|
|
709 |
TInt j;
|
|
710 |
test.Printf(_L("%03x:"),i);
|
|
711 |
for (j=0; j<16; ++j)
|
|
712 |
{
|
|
713 |
test.Printf(_L(" %02x"),Buffer[i+j]);
|
|
714 |
}
|
|
715 |
}
|
|
716 |
test(0);
|
|
717 |
}
|
|
718 |
if (x==4095)
|
|
719 |
break;
|
|
720 |
}
|
|
721 |
Ipccpy.Close();
|
|
722 |
test.End();
|
|
723 |
return KErrNone;
|
|
724 |
}
|