566 lines
20 KiB
C++
566 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, 2011 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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#include "sal/config.h"
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#include <cstdlib>
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#include <new>
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#include <vector>
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#include "boost/noncopyable.hpp"
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#include "com/sun/star/io/IOException.hpp"
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#include "com/sun/star/uno/Reference.hxx"
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#include "com/sun/star/uno/RuntimeException.hpp"
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#include "com/sun/star/uno/Sequence.hxx"
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#include "com/sun/star/uno/XInterface.hpp"
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#include "cppu/unotype.hxx"
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#include "osl/diagnose.h"
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#include "rtl/byteseq.hxx"
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#include "rtl/ref.hxx"
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#include "rtl/textcvt.h"
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#include "rtl/textenc.h"
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#include "rtl/ustring.h"
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#include "rtl/ustring.hxx"
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#include "sal/types.h"
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#include "typelib/typeclass.h"
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#include "typelib/typedescription.h"
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#include "typelib/typedescription.hxx"
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#include "uno/any2.h"
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#include "uno/data.h"
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#include "uno/dispatcher.hxx"
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#include "binaryany.hxx"
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#include "bridge.hxx"
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#include "cache.hxx"
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#include "readerstate.hxx"
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#include "unmarshal.hxx"
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namespace binaryurp {
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namespace {
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namespace css = com::sun::star;
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void * allocate(sal_Size size) {
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void * p = rtl_allocateMemory(size);
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if (p == 0) {
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throw std::bad_alloc();
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}
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return p;
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}
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std::vector< BinaryAny >::iterator copyMemberValues(
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css::uno::TypeDescription const & type,
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std::vector< BinaryAny >::iterator const & it, void * buffer) throw ()
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{
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OSL_ASSERT(
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type.is() &&
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(type.get()->eTypeClass == typelib_TypeClass_STRUCT ||
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type.get()->eTypeClass == typelib_TypeClass_EXCEPTION) &&
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buffer != 0);
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type.makeComplete();
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std::vector< BinaryAny >::iterator i(it);
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typelib_CompoundTypeDescription * ctd =
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reinterpret_cast< typelib_CompoundTypeDescription * >(type.get());
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if (ctd->pBaseTypeDescription != 0) {
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i = copyMemberValues(
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css::uno::TypeDescription(&ctd->pBaseTypeDescription->aBase), i,
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buffer);
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}
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for (sal_Int32 j = 0; j != ctd->nMembers; ++j) {
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uno_type_copyData(
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static_cast< char * >(buffer) + ctd->pMemberOffsets[j],
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const_cast< void * >(
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i++->getValue(css::uno::TypeDescription(ctd->ppTypeRefs[j]))),
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ctd->ppTypeRefs[j], 0);
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}
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return i;
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}
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}
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Unmarshal::Unmarshal(
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rtl::Reference< Bridge > const & bridge, ReaderState & state,
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css::uno::Sequence< sal_Int8 > const & buffer):
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bridge_(bridge), state_(state), buffer_(buffer)
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{
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data_ = reinterpret_cast< sal_uInt8 const * >(buffer_.getConstArray());
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end_ = data_ + buffer_.getLength();
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}
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Unmarshal::~Unmarshal() {}
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sal_uInt8 Unmarshal::read8() {
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check(1);
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return *data_++;
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}
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sal_uInt16 Unmarshal::read16() {
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check(2);
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sal_uInt16 n = static_cast< sal_uInt16 >(*data_++) << 8;
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return n | *data_++;
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}
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sal_uInt32 Unmarshal::read32() {
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check(4);
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sal_uInt32 n = static_cast< sal_uInt32 >(*data_++) << 24;
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n |= static_cast< sal_uInt32 >(*data_++) << 16;
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n |= static_cast< sal_uInt32 >(*data_++) << 8;
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return n | *data_++;
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}
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css::uno::TypeDescription Unmarshal::readType() {
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sal_uInt8 flags = read8();
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typelib_TypeClass tc = static_cast< typelib_TypeClass >(flags & 0x7F);
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switch (tc) {
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case typelib_TypeClass_VOID:
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case typelib_TypeClass_BOOLEAN:
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case typelib_TypeClass_BYTE:
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case typelib_TypeClass_SHORT:
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case typelib_TypeClass_UNSIGNED_SHORT:
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case typelib_TypeClass_LONG:
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case typelib_TypeClass_UNSIGNED_LONG:
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case typelib_TypeClass_HYPER:
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case typelib_TypeClass_UNSIGNED_HYPER:
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case typelib_TypeClass_FLOAT:
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case typelib_TypeClass_DOUBLE:
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case typelib_TypeClass_CHAR:
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case typelib_TypeClass_STRING:
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case typelib_TypeClass_TYPE:
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case typelib_TypeClass_ANY:
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if ((flags & 0x80) != 0) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: cache flag of simple type is"
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" set")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return css::uno::TypeDescription(
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*typelib_static_type_getByTypeClass(
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static_cast< typelib_TypeClass >(tc)));
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case typelib_TypeClass_SEQUENCE:
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case typelib_TypeClass_ENUM:
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case typelib_TypeClass_STRUCT:
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case typelib_TypeClass_EXCEPTION:
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case typelib_TypeClass_INTERFACE:
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{
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sal_uInt16 idx = readCacheIndex();
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if ((flags & 0x80) == 0) {
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if (idx == cache::ignore || !state_.typeCache[idx].is()) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: unknown type cache"
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" index")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return state_.typeCache[idx];
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} else {
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css::uno::TypeDescription t(readString());
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if (!t.is() ||
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t.get()->eTypeClass != static_cast< typelib_TypeClass >(tc))
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{
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: type with unknown"
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" name")),
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css::uno::Reference< css::uno::XInterface >());
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}
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for (css::uno::TypeDescription t2(t);
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t2.get()->eTypeClass == typelib_TypeClass_SEQUENCE;)
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{
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t2.makeComplete();
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t2 = css::uno::TypeDescription(
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reinterpret_cast< typelib_IndirectTypeDescription * >(
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t2.get())->pType);
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if (!t2.is()) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: sequence type with"
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" unknown component type")),
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css::uno::Reference< css::uno::XInterface >());
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}
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switch (t2.get()->eTypeClass) {
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case typelib_TypeClass_VOID:
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case typelib_TypeClass_EXCEPTION:
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: sequence type with"
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" bad component type")),
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css::uno::Reference< css::uno::XInterface >());
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default:
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break;
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}
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}
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if (idx != cache::ignore) {
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state_.typeCache[idx] = t;
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}
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return t;
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}
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}
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default:
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: type of unknown type class")),
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css::uno::Reference< css::uno::XInterface >());
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}
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}
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rtl::OUString Unmarshal::readOid() {
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rtl::OUString oid(readString());
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for (sal_Int32 i = 0; i != oid.getLength(); ++i) {
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if (oid[i] > 0x7F) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: OID contains non-ASCII"
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" character")),
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css::uno::Reference< css::uno::XInterface >());
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}
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}
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sal_uInt16 idx = readCacheIndex();
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if (oid.getLength() == 0 && idx != cache::ignore) {
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if (state_.oidCache[idx].getLength() == 0) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: unknown OID cache index")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return state_.oidCache[idx];
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}
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if (idx != cache::ignore) {
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state_.oidCache[idx] = oid;
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}
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return oid;
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}
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rtl::ByteSequence Unmarshal::readTid() {
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rtl::ByteSequence tid(
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*static_cast< sal_Sequence * const * >(
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readSequence(
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css::uno::TypeDescription(
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cppu::UnoType< css::uno::Sequence< sal_Int8 > >::get())).
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getValue(
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css::uno::TypeDescription(
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cppu::UnoType< css::uno::Sequence< sal_Int8 > >::get()))));
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sal_uInt16 idx = readCacheIndex();
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if (tid.getLength() == 0) {
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if (idx == cache::ignore || state_.tidCache[idx].getLength() == 0) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: unknown TID cache index")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return state_.tidCache[idx];
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}
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if (idx != cache::ignore) {
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state_.tidCache[idx] = tid;
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}
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return tid;
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}
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BinaryAny Unmarshal::readValue(css::uno::TypeDescription const & type) {
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OSL_ASSERT(type.is());
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switch (type.get()->eTypeClass) {
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default:
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std::abort(); // this cannot happen
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// pseudo fall-through to avoid compiler warnings
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case typelib_TypeClass_VOID:
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return BinaryAny();
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case typelib_TypeClass_BOOLEAN:
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{
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sal_uInt8 v = read8();
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if (v > 1) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: boolean of unknown value")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return BinaryAny(type, &v);
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}
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case typelib_TypeClass_BYTE:
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{
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sal_uInt8 v = read8();
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return BinaryAny(type, &v);
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}
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case typelib_TypeClass_SHORT:
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case typelib_TypeClass_UNSIGNED_SHORT:
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case typelib_TypeClass_CHAR:
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{
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sal_uInt16 v = read16();
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return BinaryAny(type, &v);
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}
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case typelib_TypeClass_LONG:
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case typelib_TypeClass_UNSIGNED_LONG:
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case typelib_TypeClass_FLOAT:
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{
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sal_uInt32 v = read32();
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return BinaryAny(type, &v);
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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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case typelib_TypeClass_DOUBLE:
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{
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sal_uInt64 v = read64();
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return BinaryAny(type, &v);
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}
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case typelib_TypeClass_STRING:
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{
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rtl::OUString v(readString());
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return BinaryAny(type, &v.pData);
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}
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case typelib_TypeClass_TYPE:
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{
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css::uno::TypeDescription v(readType());
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typelib_TypeDescription * p = v.get();
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return BinaryAny(type, &p);
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}
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case typelib_TypeClass_ANY:
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{
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css::uno::TypeDescription t(readType());
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if (t.get()->eTypeClass == typelib_TypeClass_ANY) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: any of type ANY")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return readValue(t);
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}
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case typelib_TypeClass_SEQUENCE:
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type.makeComplete();
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return readSequence(type);
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case typelib_TypeClass_ENUM:
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{
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sal_Int32 v = static_cast< sal_Int32 >(read32());
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type.makeComplete();
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typelib_EnumTypeDescription * etd =
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reinterpret_cast< typelib_EnumTypeDescription * >(type.get());
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bool found = false;
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for (sal_Int32 i = 0; i != etd->nEnumValues; ++i) {
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if (etd->pEnumValues[i] == v) {
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found = true;
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break;
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}
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}
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if (!found) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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"binaryurp::Unmarshal: unknown enum value")),
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css::uno::Reference< css::uno::XInterface >());
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}
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return BinaryAny(type, &v);
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}
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case typelib_TypeClass_STRUCT:
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case typelib_TypeClass_EXCEPTION:
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{
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std::vector< BinaryAny > as;
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readMemberValues(type, &as);
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void * buf = allocate(type.get()->nSize);
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copyMemberValues(type, as.begin(), buf);
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uno_Any raw;
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raw.pType = reinterpret_cast< typelib_TypeDescriptionReference * >(
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type.get());
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raw.pData = buf;
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raw.pReserved = 0;
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return BinaryAny(raw);
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}
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case typelib_TypeClass_INTERFACE:
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{
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css::uno::UnoInterfaceReference obj(
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bridge_->registerIncomingInterface(readOid(), type));
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return BinaryAny(type, &obj.m_pUnoI);
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}
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}
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}
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void Unmarshal::done() const {
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if (data_ != end_) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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|
"binaryurp::Unmarshal: block contains excess data")),
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css::uno::Reference< css::uno::XInterface >());
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}
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}
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void Unmarshal::check(sal_Int32 size) const {
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if (end_ - data_ < size) {
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throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
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|
"binaryurp::Unmarshal: trying to read past end of block")),
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css::uno::Reference< css::uno::XInterface >());
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}
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|
}
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sal_uInt32 Unmarshal::readCompressed() {
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sal_uInt8 n = read8();
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return n == 0xFF ? read32() : n;
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}
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|
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sal_uInt16 Unmarshal::readCacheIndex() {
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|
sal_uInt16 idx = read16();
|
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if (idx >= cache::size && idx != cache::ignore) {
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|
throw css::io::IOException(
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
|
|
"binaryurp::Unmarshal: cache index out of range")),
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|
css::uno::Reference< css::uno::XInterface >());
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|
}
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return idx;
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|
}
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|
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sal_uInt64 Unmarshal::read64() {
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|
check(8);
|
|
sal_uInt64 n = static_cast< sal_uInt64 >(*data_++) << 56;
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n |= static_cast< sal_uInt64 >(*data_++) << 48;
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n |= static_cast< sal_uInt64 >(*data_++) << 40;
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|
n |= static_cast< sal_uInt64 >(*data_++) << 32;
|
|
n |= static_cast< sal_uInt64 >(*data_++) << 24;
|
|
n |= static_cast< sal_uInt64 >(*data_++) << 16;
|
|
n |= static_cast< sal_uInt64 >(*data_++) << 8;
|
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return n | *data_++;
|
|
}
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|
|
|
rtl::OUString Unmarshal::readString() {
|
|
sal_uInt32 n = readCompressed();
|
|
if (n > SAL_MAX_INT32) {
|
|
throw css::uno::RuntimeException(
|
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rtl::OUString(
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RTL_CONSTASCII_USTRINGPARAM(
|
|
"binaryurp::Unmarshal: string size too large")),
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|
css::uno::Reference< css::uno::XInterface >());
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|
}
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|
check(static_cast< sal_Int32 >(n));
|
|
rtl::OUString s;
|
|
if (!rtl_convertStringToUString(
|
|
&s.pData, reinterpret_cast< char const * >(data_),
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|
static_cast< sal_Int32 >(n), RTL_TEXTENCODING_UTF8,
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|
(RTL_TEXTTOUNICODE_FLAGS_UNDEFINED_ERROR |
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|
RTL_TEXTTOUNICODE_FLAGS_MBUNDEFINED_ERROR |
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|
RTL_TEXTTOUNICODE_FLAGS_INVALID_ERROR)))
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{
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|
throw css::io::IOException(
|
|
rtl::OUString(
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|
RTL_CONSTASCII_USTRINGPARAM(
|
|
"binaryurp::Unmarshal: string does not contain UTF-8")),
|
|
css::uno::Reference< css::uno::XInterface >());
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|
}
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|
data_ += n;
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|
return s;
|
|
}
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|
|
BinaryAny Unmarshal::readSequence(css::uno::TypeDescription const & type) {
|
|
OSL_ASSERT(
|
|
type.is() && type.get()->eTypeClass == typelib_TypeClass_SEQUENCE);
|
|
sal_uInt32 n = readCompressed();
|
|
if (n > SAL_MAX_INT32) {
|
|
throw css::uno::RuntimeException(
|
|
rtl::OUString(
|
|
RTL_CONSTASCII_USTRINGPARAM(
|
|
"binaryurp::Unmarshal: sequence size too large")),
|
|
css::uno::Reference< css::uno::XInterface >());
|
|
}
|
|
if (n == 0) {
|
|
return BinaryAny(type, 0);
|
|
}
|
|
css::uno::TypeDescription ctd(
|
|
reinterpret_cast< typelib_IndirectTypeDescription * >(
|
|
type.get())->pType);
|
|
if (ctd.get()->eTypeClass == typelib_TypeClass_BYTE) {
|
|
check(static_cast< sal_Int32 >(n));
|
|
rtl::ByteSequence s(
|
|
reinterpret_cast< sal_Int8 const * >(data_),
|
|
static_cast< sal_Int32 >(n));
|
|
data_ += n;
|
|
sal_Sequence * p = s.getHandle();
|
|
return BinaryAny(type, &p);
|
|
}
|
|
std::vector< BinaryAny > as;
|
|
for (sal_uInt32 i = 0; i != n; ++i) {
|
|
as.push_back(readValue(ctd));
|
|
}
|
|
OSL_ASSERT(ctd.get()->nSize >= 0);
|
|
sal_uInt64 size = static_cast< sal_uInt64 >(n) *
|
|
static_cast< sal_uInt64 >(ctd.get()->nSize);
|
|
// sal_uInt32 * sal_Int32 -> sal_uInt64 cannot overflow
|
|
if (size > SAL_MAX_SIZE - SAL_SEQUENCE_HEADER_SIZE) {
|
|
throw css::uno::RuntimeException(
|
|
rtl::OUString(
|
|
RTL_CONSTASCII_USTRINGPARAM(
|
|
"binaryurp::Unmarshal: sequence size too large")),
|
|
css::uno::Reference< css::uno::XInterface >());
|
|
}
|
|
void * buf = allocate(
|
|
SAL_SEQUENCE_HEADER_SIZE + static_cast< sal_Size >(size));
|
|
static_cast< sal_Sequence * >(buf)->nRefCount = 0;
|
|
static_cast< sal_Sequence * >(buf)->nElements =
|
|
static_cast< sal_Int32 >(n);
|
|
for (sal_uInt32 i = 0; i != n; ++i) {
|
|
uno_copyData(
|
|
static_cast< sal_Sequence * >(buf)->elements + i * ctd.get()->nSize,
|
|
const_cast< void * >(as[i].getValue(ctd)), ctd.get(), 0);
|
|
}
|
|
return BinaryAny(type, reinterpret_cast< sal_Sequence ** >(&buf));
|
|
}
|
|
|
|
void Unmarshal::readMemberValues(
|
|
css::uno::TypeDescription const & type, std::vector< BinaryAny > * values)
|
|
{
|
|
OSL_ASSERT(
|
|
type.is() &&
|
|
(type.get()->eTypeClass == typelib_TypeClass_STRUCT ||
|
|
type.get()->eTypeClass == typelib_TypeClass_EXCEPTION) &&
|
|
values != 0);
|
|
type.makeComplete();
|
|
typelib_CompoundTypeDescription * ctd =
|
|
reinterpret_cast< typelib_CompoundTypeDescription * >(type.get());
|
|
if (ctd->pBaseTypeDescription != 0) {
|
|
readMemberValues(
|
|
css::uno::TypeDescription(&ctd->pBaseTypeDescription->aBase),
|
|
values);
|
|
}
|
|
for (sal_Int32 i = 0; i != ctd->nMembers; ++i) {
|
|
values->push_back(
|
|
readValue(css::uno::TypeDescription(ctd->ppTypeRefs[i])));
|
|
}
|
|
}
|
|
|
|
}
|
|
|
|
/* vim:set shiftwidth=4 softtabstop=4 expandtab: */
|