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// Copyright (c) 2010-2010 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\nkern\nklib.cpp
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//
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//
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#include <e32atomics.h>
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#include <nklib.h>
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#ifndef __SRATIO_MACHINE_CODED__
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void SRatio::Set(TUint32 aInt, TInt aDivisorExp)
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{
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iSpare1 = 0;
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iSpare2 = 0;
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iM = aInt;
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if (iM)
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{
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TInt ms1 = __e32_find_ms1_32(iM);
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TInt shift = 31 - ms1;
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iM <<= shift;
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iX = (TInt16)(-shift - aDivisorExp);
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}
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else
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iX = 0;
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}
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TInt SRatio::Reciprocal()
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{
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if (iM==0)
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return KErrDivideByZero;
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// Calculate 2^32/iM
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TInt exp=0;
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if (iM == 0x80000000u)
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{
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// ratio = 2^(31+iX) so reciprocal = 2^(-31-iX) = 2^(31 + (-62-iX))
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exp = -62-iX;
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}
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else
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{
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// 2^32/iM = 1.xxx
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TUint64 r64 = MAKE_TUINT64(0u-iM,0);
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TUint32 q32 = (TUint32)(r64/TUint64(iM)); // next 32 bits of result
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iM = 0x80000000u | (q32>>1);
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exp = -63-iX;
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if (q32 & 1)
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{
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if (++iM==0)
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iM=0x80000000u, ++exp;
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}
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}
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if (exp < -32768)
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{
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iM = 0;
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iX = 0;
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return KErrUnderflow;
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}
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if (exp > 32767)
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{
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iM = 0xffffffffu;
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iX = 32767;
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return KErrOverflow;
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}
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iX = (TInt16)exp;
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return KErrNone;
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}
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TInt SRatio::Mult(TUint32& aInt32)
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{
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TUint64 x = aInt32;
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x *= TUint64(iM);
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if (x==0)
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{
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aInt32 = 0;
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return KErrNone;
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}
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TInt ms1 = __e32_find_ms1_64(x);
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TInt ms1b = ms1 + iX;
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if (ms1b>=32)
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{
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aInt32 = ~0u;
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return KErrOverflow;
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}
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if (ms1b<-1)
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{
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aInt32 = 0;
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return KErrUnderflow;
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}
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TInt shift = ms1b - ms1 + 31;
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if (shift > 0)
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x <<= shift;
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else if (shift < 0)
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x >>= (-shift);
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x += MAKE_TUINT64(0,0x40000000u);
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if (x >> 63)
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{
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aInt32 = ~0u;
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return KErrOverflow;
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}
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aInt32 = (TUint32)(x>>31);
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return aInt32 ? KErrNone : KErrUnderflow;
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}
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//TInt SRatio::Mult(TUint64& aInt64)
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// {
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// }
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#endif
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void SRatioInv::Set(const SRatio* a)
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{
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if (a)
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{
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iR = *a;
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iI = iR;
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iI.Reciprocal();
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}
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else
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{
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iR.Set(1);
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iI.Set(1);
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}
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}
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