535 lines
20 KiB
C++
535 lines
20 KiB
C++
/* -*- Mode: C++; tab-width: 4; indent-tabs-mode: nil; c-basic-offset: 4 -*- */
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/*************************************************************************
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*
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* DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
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*
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* Copyright 2000, 2010 Oracle and/or its affiliates.
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*
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* OpenOffice.org - a multi-platform office productivity suite
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*
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* This file is part of OpenOffice.org.
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*
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* OpenOffice.org is free software: you can redistribute it and/or modify
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* it under the terms of the GNU Lesser General Public License version 3
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* only, as published by the Free Software Foundation.
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*
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* OpenOffice.org is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU Lesser General Public License version 3 for more details
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* (a copy is included in the LICENSE file that accompanied this code).
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*
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* You should have received a copy of the GNU Lesser General Public License
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* version 3 along with OpenOffice.org. If not, see
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* <http://www.openoffice.org/license.html>
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* for a copy of the LGPLv3 License.
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*
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************************************************************************/
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// MARKER(update_precomp.py): autogen include statement, do not remove
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#include "precompiled_bridges.hxx"
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#include <malloc.h>
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#include <com/sun/star/uno/genfunc.hxx>
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#include <uno/data.h>
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#include "bridges/cpp_uno/shared/bridge.hxx"
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#include "bridges/cpp_uno/shared/types.hxx"
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#include "bridges/cpp_uno/shared/unointerfaceproxy.hxx"
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#include "bridges/cpp_uno/shared/vtables.hxx"
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#include "share.hxx"
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#include <stdio.h>
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#include <string.h>
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using namespace ::rtl;
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using namespace ::com::sun::star::uno;
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void MapReturn(long r0, typelib_TypeClass eTypeClass, sal_uInt64* pRegisterReturn)
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{
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register float fret asm("$f0");
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register double dret asm("$f0");
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#if OSL_DEBUG_LEVEL > 2
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fprintf(stderr,"Mapping Return with %lx %ld %f\n", r0, r0, dret);
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#endif
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switch (eTypeClass)
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{
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case typelib_TypeClass_HYPER:
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case typelib_TypeClass_UNSIGNED_HYPER:
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*pRegisterReturn = r0;
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break;
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case typelib_TypeClass_LONG:
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case typelib_TypeClass_UNSIGNED_LONG:
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case typelib_TypeClass_ENUM:
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*(unsigned int*)pRegisterReturn = (unsigned int)r0;
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break;
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case typelib_TypeClass_CHAR:
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case typelib_TypeClass_SHORT:
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case typelib_TypeClass_UNSIGNED_SHORT:
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*(unsigned short*)pRegisterReturn = (unsigned short)r0;
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break;
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case typelib_TypeClass_BOOLEAN:
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case typelib_TypeClass_BYTE:
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*(unsigned char*)pRegisterReturn = (unsigned char)r0;
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break;
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case typelib_TypeClass_FLOAT:
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*reinterpret_cast<float *>( pRegisterReturn ) = fret;
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break;
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case typelib_TypeClass_DOUBLE:
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*reinterpret_cast<double *>( pRegisterReturn ) = dret;
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break;
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default:
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break;
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}
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#if OSL_DEBUG_LEVEL > 2
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fprintf(stderr, "end of MapReturn with %x\n", pRegisterReturn ? *pRegisterReturn : 0);
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#endif
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}
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#define INSERT_FLOAT( pSV, nr, pFPR, pDS ) \
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{ \
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if ( nr < axp::MAX_WORDS_IN_REGS ) \
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{ \
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pFPR[nr++] = *reinterpret_cast<float *>( pSV ); \
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} \
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else \
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*pDS++ = *reinterpret_cast<sal_uInt64 *>( pSV ); \
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}
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#define INSERT_DOUBLE( pSV, nr, pFPR, pDS ) \
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if ( nr < axp::MAX_WORDS_IN_REGS ) \
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pFPR[nr++] = *reinterpret_cast<double *>( pSV ); \
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else \
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*pDS++ = *reinterpret_cast<sal_uInt64 *>( pSV ); // verbatim!
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#define INSERT_INT64( pSV, nr, pGPR, pDS ) \
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if ( nr < axp::MAX_WORDS_IN_REGS ) \
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pGPR[nr++] = *reinterpret_cast<sal_uInt64 *>( pSV ); \
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else \
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*pDS++ = *reinterpret_cast<sal_uInt64 *>( pSV );
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#define INSERT_INT32( pSV, nr, pGPR, pDS ) \
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if ( nr < axp::MAX_WORDS_IN_REGS ) \
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pGPR[nr++] = *reinterpret_cast<sal_uInt32 *>( pSV ); \
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else \
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*pDS++ = *reinterpret_cast<sal_uInt32 *>( pSV );
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#define INSERT_INT16( pSV, nr, pGPR, pDS ) \
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if ( nr < axp::MAX_WORDS_IN_REGS ) \
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pGPR[nr++] = *reinterpret_cast<sal_uInt16 *>( pSV ); \
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else \
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*pDS++ = *reinterpret_cast<sal_uInt16 *>( pSV );
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#define INSERT_INT8( pSV, nr, pGPR, pDS ) \
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if ( nr < axp::MAX_WORDS_IN_REGS ) \
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pGPR[nr++] = *reinterpret_cast<sal_uInt8 *>( pSV ); \
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else \
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*pDS++ = *reinterpret_cast<sal_uInt8 *>( pSV );
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namespace
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{
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//==================================================================================================
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void callVirtualMethod(
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void * pThis, sal_Int32 nVtableIndex,
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void * pRegisterReturn, typelib_TypeDescription * pReturnTypeDescr,
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sal_uInt64 *pStack, sal_uInt32 nStack,
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sal_uInt64 *pGPR, sal_uInt32 nGPR,
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double *pFPR, sal_uInt32 nFPR)
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{
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// Should not happen, but...
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if ( nFPR > axp::MAX_SSE_REGS )
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nFPR = axp::MAX_SSE_REGS;
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if ( nGPR > axp::MAX_GPR_REGS )
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nGPR = axp::MAX_GPR_REGS;
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#if OSL_DEBUG_LEVEL > 2
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// Let's figure out what is really going on here
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{
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fprintf( stderr, "= nStack is %d\n", nStack );
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fprintf( stderr, "= callVirtualMethod() =\nGPR's (%d): ", nGPR );
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for ( unsigned int i = 0; i < nGPR; ++i )
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fprintf( stderr, "0x%lx, ", pGPR[i] );
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fprintf( stderr, "\nFPR's (%d): ", nFPR );
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for ( unsigned int i = 0; i < nFPR; ++i )
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fprintf( stderr, "0x%lx (%f), ", pFPR[i], pFPR[i] );
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fprintf( stderr, "\nStack (%d): ", nStack );
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for ( unsigned int i = 0; i < nStack; ++i )
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fprintf( stderr, "0x%lx, ", pStack[i] );
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fprintf( stderr, "\n" );
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fprintf( stderr, "pRegisterReturn is %p\n", pRegisterReturn);
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}
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#endif
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// Load parameters to stack, if necessary
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// Stack, if used, must be 8-bytes aligned
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sal_uInt64 *stack = (sal_uInt64 *) __builtin_alloca( nStack * 8 );
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memcpy( stack, pStack, nStack * 8 );
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// To get pointer to method
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// a) get the address of the vtable
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sal_uInt64 pMethod = *((sal_uInt64 *)pThis);
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// b) get the address from the vtable entry at offset
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pMethod += 8 * nVtableIndex;
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pMethod = *((sal_uInt64 *)pMethod);
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typedef void (* FunctionCall )( sal_uInt64, sal_uInt64, sal_uInt64, sal_uInt64, sal_uInt64, sal_uInt64 );
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FunctionCall pFunc = (FunctionCall)pMethod;
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switch (nFPR) //deliberate fall through
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{
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case 6:
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asm volatile("ldt $f16,%0" :: "m"(pFPR[5]) : "$f16");
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case 5:
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asm volatile("ldt $f17,%0" :: "m"(pFPR[4]) : "$f17");
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case 4:
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asm volatile("ldt $f18,%0" :: "m"(pFPR[3]) : "$f18");
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case 3:
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asm volatile("ldt $f19,%0" :: "m"(pFPR[2]) : "$f19");
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case 2:
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asm volatile("ldt $f20,%0" :: "m"(pFPR[1]) : "$f20");
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case 1:
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asm volatile("ldt $f21,%0" :: "m"(pFPR[0]) : "$f21");
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default:
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break;
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}
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(*pFunc)(pGPR[0], pGPR[1], pGPR[2], pGPR[3], pGPR[4], pGPR[5]);
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register sal_uInt64 r0 __asm__("$0");
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MapReturn(r0, pReturnTypeDescr->eTypeClass, (sal_uInt64*)pRegisterReturn);
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}
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//============================================================================
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static void cpp_call(
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bridges::cpp_uno::shared::UnoInterfaceProxy * pThis,
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bridges::cpp_uno::shared::VtableSlot aVtableSlot,
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typelib_TypeDescriptionReference * pReturnTypeRef,
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sal_Int32 nParams, typelib_MethodParameter * pParams,
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void * pUnoReturn, void * pUnoArgs[], uno_Any ** ppUnoExc )
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{
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// max space for: [complex ret ptr], values|ptr ...
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sal_uInt64 * pStack = (sal_uInt64 *)alloca( (nParams+3) * sizeof(sal_Int64) );
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sal_uInt64 * pStackStart = pStack;
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sal_uInt64 pGPR[axp::MAX_GPR_REGS];
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double pFPR[axp::MAX_SSE_REGS];
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sal_uInt32 nRegs = 0;
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// return
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typelib_TypeDescription * pReturnTypeDescr = 0;
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TYPELIB_DANGER_GET( &pReturnTypeDescr, pReturnTypeRef );
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OSL_ENSURE( pReturnTypeDescr, "### expected return type description!" );
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void * pCppReturn = 0; // if != 0 && != pUnoReturn, needs reconversion
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if (pReturnTypeDescr)
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{
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if (bridges::cpp_uno::shared::isSimpleType( pReturnTypeDescr ))
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{
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pCppReturn = pUnoReturn; // direct way for simple types
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}
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else
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{
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// complex return via ptr
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pCppReturn = (bridges::cpp_uno::shared::relatesToInterfaceType( pReturnTypeDescr )
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? alloca( pReturnTypeDescr->nSize )
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: pUnoReturn); // direct way
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INSERT_INT64( &pCppReturn, nRegs, pGPR, pStack );
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}
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}
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// push "this" pointer
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void * pAdjustedThisPtr = reinterpret_cast< void ** >( pThis->getCppI() ) + aVtableSlot.offset;
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INSERT_INT64( &pAdjustedThisPtr, nRegs, pGPR, pStack );
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// stack space
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OSL_ENSURE( sizeof(void *) == sizeof(sal_Int64), "### unexpected size!" );
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// args
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void ** pCppArgs = (void **)alloca( 3 * sizeof(void *) * nParams );
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// indizes of values this have to be converted (interface conversion cpp<=>uno)
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sal_Int32 * pTempIndizes = (sal_Int32 *)(pCppArgs + nParams);
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// type descriptions for reconversions
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typelib_TypeDescription ** ppTempParamTypeDescr = (typelib_TypeDescription **)(pCppArgs + (2 * nParams));
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sal_Int32 nTempIndizes = 0;
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for ( sal_Int32 nPos = 0; nPos < nParams; ++nPos )
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{
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const typelib_MethodParameter & rParam = pParams[nPos];
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typelib_TypeDescription * pParamTypeDescr = 0;
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TYPELIB_DANGER_GET( &pParamTypeDescr, rParam.pTypeRef );
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if (!rParam.bOut && bridges::cpp_uno::shared::isSimpleType( pParamTypeDescr ))
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{
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uno_copyAndConvertData( pCppArgs[nPos] = alloca( 8 ), pUnoArgs[nPos], pParamTypeDescr,
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pThis->getBridge()->getUno2Cpp() );
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switch (pParamTypeDescr->eTypeClass)
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{
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case typelib_TypeClass_HYPER:
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case typelib_TypeClass_UNSIGNED_HYPER:
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INSERT_INT64( pCppArgs[nPos], nRegs, pGPR, pStack );
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break;
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case typelib_TypeClass_LONG:
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case typelib_TypeClass_UNSIGNED_LONG:
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case typelib_TypeClass_ENUM:
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INSERT_INT32( pCppArgs[nPos], nRegs, pGPR, pStack );
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break;
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case typelib_TypeClass_SHORT:
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case typelib_TypeClass_CHAR:
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case typelib_TypeClass_UNSIGNED_SHORT:
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INSERT_INT16( pCppArgs[nPos], nRegs, pGPR, pStack );
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break;
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case typelib_TypeClass_BOOLEAN:
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case typelib_TypeClass_BYTE:
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INSERT_INT8( pCppArgs[nPos], nRegs, pGPR, pStack );
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break;
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case typelib_TypeClass_FLOAT:
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INSERT_FLOAT( pCppArgs[nPos], nRegs, pFPR, pStack );
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break;
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case typelib_TypeClass_DOUBLE:
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INSERT_DOUBLE( pCppArgs[nPos], nRegs, pFPR, pStack );
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break;
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default:
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break;
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}
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// no longer needed
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TYPELIB_DANGER_RELEASE( pParamTypeDescr );
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}
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else // ptr to complex value | ref
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{
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if (! rParam.bIn) // is pure out
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{
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// cpp out is constructed mem, uno out is not!
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uno_constructData(
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pCppArgs[nPos] = alloca( pParamTypeDescr->nSize ),
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pParamTypeDescr );
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pTempIndizes[nTempIndizes] = nPos; // default constructed for cpp call
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// will be released at reconversion
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ppTempParamTypeDescr[nTempIndizes++] = pParamTypeDescr;
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}
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// is in/inout
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else if (bridges::cpp_uno::shared::relatesToInterfaceType( pParamTypeDescr ))
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{
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uno_copyAndConvertData(
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pCppArgs[nPos] = alloca( pParamTypeDescr->nSize ),
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pUnoArgs[nPos], pParamTypeDescr, pThis->getBridge()->getUno2Cpp() );
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pTempIndizes[nTempIndizes] = nPos; // has to be reconverted
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// will be released at reconversion
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ppTempParamTypeDescr[nTempIndizes++] = pParamTypeDescr;
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}
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else // direct way
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{
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pCppArgs[nPos] = pUnoArgs[nPos];
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// no longer needed
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TYPELIB_DANGER_RELEASE( pParamTypeDescr );
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}
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INSERT_INT64( &(pCppArgs[nPos]), nRegs, pGPR, pStack );
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}
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}
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try
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{
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callVirtualMethod(
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pAdjustedThisPtr, aVtableSlot.index,
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pCppReturn, pReturnTypeDescr,
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pStackStart, (pStack - pStackStart),
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pGPR, nRegs,
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pFPR, nRegs );
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// NO exception occurred...
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*ppUnoExc = 0;
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// reconvert temporary params
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for ( ; nTempIndizes--; )
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{
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sal_Int32 nIndex = pTempIndizes[nTempIndizes];
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typelib_TypeDescription * pParamTypeDescr = ppTempParamTypeDescr[nTempIndizes];
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if (pParams[nIndex].bIn)
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{
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if (pParams[nIndex].bOut) // inout
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{
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uno_destructData( pUnoArgs[nIndex], pParamTypeDescr, 0 ); // destroy uno value
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uno_copyAndConvertData( pUnoArgs[nIndex], pCppArgs[nIndex], pParamTypeDescr,
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pThis->getBridge()->getCpp2Uno() );
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}
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}
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else // pure out
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{
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uno_copyAndConvertData( pUnoArgs[nIndex], pCppArgs[nIndex], pParamTypeDescr,
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pThis->getBridge()->getCpp2Uno() );
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}
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// destroy temp cpp param => cpp: every param was constructed
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uno_destructData( pCppArgs[nIndex], pParamTypeDescr, cpp_release );
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TYPELIB_DANGER_RELEASE( pParamTypeDescr );
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}
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// return value
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if (pCppReturn && pUnoReturn != pCppReturn)
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{
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uno_copyAndConvertData( pUnoReturn, pCppReturn, pReturnTypeDescr,
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pThis->getBridge()->getCpp2Uno() );
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uno_destructData( pCppReturn, pReturnTypeDescr, cpp_release );
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}
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}
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catch (...)
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{
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// fill uno exception
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fillUnoException( CPPU_CURRENT_NAMESPACE::__cxa_get_globals()->caughtExceptions,
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*ppUnoExc, pThis->getBridge()->getCpp2Uno() );
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// temporary params
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for ( ; nTempIndizes--; )
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{
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sal_Int32 nIndex = pTempIndizes[nTempIndizes];
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// destroy temp cpp param => cpp: every param was constructed
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uno_destructData( pCppArgs[nIndex], ppTempParamTypeDescr[nTempIndizes], cpp_release );
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TYPELIB_DANGER_RELEASE( ppTempParamTypeDescr[nTempIndizes] );
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}
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// return type
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if (pReturnTypeDescr)
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TYPELIB_DANGER_RELEASE( pReturnTypeDescr );
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}
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}
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}
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namespace bridges { namespace cpp_uno { namespace shared {
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void unoInterfaceProxyDispatch(
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uno_Interface * pUnoI, const typelib_TypeDescription * pMemberDescr,
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void * pReturn, void * pArgs[], uno_Any ** ppException )
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{
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#if OSL_DEBUG_LEVEL > 2
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fprintf(stderr, "unoInterfaceProxyDispatch\n");
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#endif
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// is my surrogate
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bridges::cpp_uno::shared::UnoInterfaceProxy * pThis
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= static_cast< bridges::cpp_uno::shared::UnoInterfaceProxy *> (pUnoI);
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switch (pMemberDescr->eTypeClass)
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{
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case typelib_TypeClass_INTERFACE_ATTRIBUTE:
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{
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VtableSlot aVtableSlot(
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getVtableSlot(
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reinterpret_cast<
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typelib_InterfaceAttributeTypeDescription const * >(
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pMemberDescr)));
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if (pReturn)
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{
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// dependent dispatch
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cpp_call(
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pThis, aVtableSlot,
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((typelib_InterfaceAttributeTypeDescription *)pMemberDescr)->pAttributeTypeRef,
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0, 0, // no params
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pReturn, pArgs, ppException );
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}
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else
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{
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// is SET
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typelib_MethodParameter aParam;
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aParam.pTypeRef =
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((typelib_InterfaceAttributeTypeDescription *)pMemberDescr)->pAttributeTypeRef;
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aParam.bIn = sal_True;
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aParam.bOut = sal_False;
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typelib_TypeDescriptionReference * pReturnTypeRef = 0;
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OUString aVoidName( RTL_CONSTASCII_USTRINGPARAM("void") );
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typelib_typedescriptionreference_new(
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&pReturnTypeRef, typelib_TypeClass_VOID, aVoidName.pData );
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// dependent dispatch
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aVtableSlot.index += 1; //get then set method
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cpp_call(
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|
pThis, aVtableSlot,
|
|
pReturnTypeRef,
|
|
1, &aParam,
|
|
pReturn, pArgs, ppException );
|
|
|
|
typelib_typedescriptionreference_release( pReturnTypeRef );
|
|
}
|
|
|
|
break;
|
|
}
|
|
case typelib_TypeClass_INTERFACE_METHOD:
|
|
{
|
|
|
|
VtableSlot aVtableSlot(
|
|
getVtableSlot(
|
|
reinterpret_cast<
|
|
typelib_InterfaceMethodTypeDescription const * >(
|
|
pMemberDescr)));
|
|
switch (aVtableSlot.index)
|
|
{
|
|
// standard calls
|
|
case 1: // acquire uno interface
|
|
(*pUnoI->acquire)( pUnoI );
|
|
*ppException = 0;
|
|
break;
|
|
case 2: // release uno interface
|
|
(*pUnoI->release)( pUnoI );
|
|
*ppException = 0;
|
|
break;
|
|
case 0: // queryInterface() opt
|
|
{
|
|
typelib_TypeDescription * pTD = 0;
|
|
TYPELIB_DANGER_GET( &pTD, reinterpret_cast< Type * >( pArgs[0] )->getTypeLibType() );
|
|
if (pTD)
|
|
{
|
|
uno_Interface * pInterface = 0;
|
|
(*pThis->pBridge->getUnoEnv()->getRegisteredInterface)(
|
|
pThis->pBridge->getUnoEnv(),
|
|
(void **)&pInterface, pThis->oid.pData, (typelib_InterfaceTypeDescription *)pTD );
|
|
|
|
if (pInterface)
|
|
{
|
|
::uno_any_construct(
|
|
reinterpret_cast< uno_Any * >( pReturn ),
|
|
&pInterface, pTD, 0 );
|
|
(*pInterface->release)( pInterface );
|
|
TYPELIB_DANGER_RELEASE( pTD );
|
|
*ppException = 0;
|
|
break;
|
|
}
|
|
TYPELIB_DANGER_RELEASE( pTD );
|
|
}
|
|
} // else perform queryInterface()
|
|
default:
|
|
// dependent dispatch
|
|
cpp_call(
|
|
pThis, aVtableSlot,
|
|
((typelib_InterfaceMethodTypeDescription *)pMemberDescr)->pReturnTypeRef,
|
|
((typelib_InterfaceMethodTypeDescription *)pMemberDescr)->nParams,
|
|
((typelib_InterfaceMethodTypeDescription *)pMemberDescr)->pParams,
|
|
pReturn, pArgs, ppException );
|
|
}
|
|
break;
|
|
}
|
|
default:
|
|
{
|
|
::com::sun::star::uno::RuntimeException aExc(
|
|
OUString( RTL_CONSTASCII_USTRINGPARAM("illegal member type description!") ),
|
|
::com::sun::star::uno::Reference< ::com::sun::star::uno::XInterface >() );
|
|
|
|
Type const & rExcType = ::getCppuType( &aExc );
|
|
// binary identical null reference
|
|
::uno_type_any_construct( *ppException, &aExc, rExcType.getTypeLibType(), 0 );
|
|
}
|
|
}
|
|
}
|
|
|
|
} } }
|
|
|
|
/* vim:set shiftwidth=4 softtabstop=4 expandtab: */
|