[857] | 1 | // Copyright (C) 2003, Fernando Luis Cacciola Carballal.
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| 2 | //
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| 3 | // Use, modification, and distribution is subject to the Boost Software
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| 4 | // License, Version 1.0. (See accompanying file LICENSE_1_0.txt or copy at
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| 5 | // http://www.boost.org/LICENSE_1_0.txt)
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| 6 | //
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| 7 | // See http://www.boost.org/lib/optional for documentation.
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| 8 | //
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| 9 | // You are welcome to contact the author at:
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| 10 | // fernando_cacciola@hotmail.com
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| 11 | //
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| 12 | #ifndef BOOST_OPTIONAL_OPTIONAL_FLC_19NOV2002_HPP
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| 13 | #define BOOST_OPTIONAL_OPTIONAL_FLC_19NOV2002_HPP
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| 14 |
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| 15 | #include<new>
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| 16 | #include<algorithm>
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| 17 |
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| 18 | #include "boost/config.hpp"
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| 19 | #include "boost/assert.hpp"
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| 20 | #include "boost/type.hpp"
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| 21 | #include "boost/type_traits/alignment_of.hpp"
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| 22 | #include "boost/type_traits/type_with_alignment.hpp"
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| 23 | #include "boost/type_traits/remove_reference.hpp"
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| 24 | #include "boost/type_traits/is_reference.hpp"
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| 25 | #include "boost/mpl/if.hpp"
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| 26 | #include "boost/mpl/bool.hpp"
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| 27 | #include "boost/mpl/not.hpp"
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| 28 | #include "boost/detail/reference_content.hpp"
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| 29 | #include "boost/none_t.hpp"
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| 30 | #include "boost/utility/compare_pointees.hpp"
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| 31 |
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| 32 | #if BOOST_WORKAROUND(BOOST_MSVC, == 1200)
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| 33 | // VC6.0 has the following bug:
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| 34 | // When a templated assignment operator exist, an implicit conversion
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| 35 | // constructing an optional<T> is used when assigment of the form:
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| 36 | // optional<T> opt ; opt = T(...);
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| 37 | // is compiled.
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| 38 | // However, optional's ctor is _explicit_ and the assignemt shouldn't compile.
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| 39 | // Therefore, for VC6.0 templated assignment is disabled.
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| 40 | //
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| 41 | #define BOOST_OPTIONAL_NO_CONVERTING_ASSIGNMENT
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| 42 | #endif
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| 43 |
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| 44 | #if BOOST_WORKAROUND(BOOST_MSVC, == 1300)
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| 45 | // VC7.0 has the following bug:
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| 46 | // When both a non-template and a template copy-ctor exist
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| 47 | // and the templated version is made 'explicit', the explicit is also
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| 48 | // given to the non-templated version, making the class non-implicitely-copyable.
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| 49 | //
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| 50 | #define BOOST_OPTIONAL_NO_CONVERTING_COPY_CTOR
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| 51 | #endif
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| 52 |
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| 53 | #if BOOST_WORKAROUND(BOOST_MSVC, <= 1300) || BOOST_WORKAROUND(BOOST_INTEL_CXX_VERSION,<=700)
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| 54 | // AFAICT only VC7.1 correctly resolves the overload set
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| 55 | // that includes the in-place factory taking functions,
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| 56 | // so for the other VC versions, in-place factory support
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| 57 | // is disabled
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| 58 | #define BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT
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| 59 | #endif
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| 60 |
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| 61 | #if BOOST_WORKAROUND(__BORLANDC__, <= 0x551)
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| 62 | // BCB (5.5.1) cannot parse the nested template struct in an inplace factory.
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| 63 | #define BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT
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| 64 | #endif
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| 65 |
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| 66 | #if !defined(BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT) \
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| 67 | && BOOST_WORKAROUND(__BORLANDC__, <= 0x564)
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| 68 | // BCB (up to 5.64) has the following bug:
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| 69 | // If there is a member function/operator template of the form
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| 70 | // template<class Expr> mfunc( Expr expr ) ;
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| 71 | // some calls are resolved to this even if there are other better matches.
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| 72 | // The effect of this bug is that calls to converting ctors and assignments
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| 73 | // are incrorrectly sink to this general catch-all member function template as shown above.
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| 74 | #define BOOST_OPTIONAL_WEAK_OVERLOAD_RESOLUTION
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| 75 | #endif
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| 76 |
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| 77 |
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| 78 | namespace boost {
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| 79 |
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| 80 | class in_place_factory_base ;
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| 81 | class typed_in_place_factory_base ;
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| 82 |
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| 83 | namespace optional_detail {
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| 84 |
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| 85 | // This local class is used instead of that in "aligned_storage.hpp"
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| 86 | // because I've found the 'official' class to ICE BCB5.5
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| 87 | // when some types are used with optional<>
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| 88 | // (due to sizeof() passed down as a non-type template parameter)
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| 89 | template <class T>
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| 90 | class aligned_storage
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| 91 | {
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| 92 | // Borland ICEs if unnamed unions are used for this!
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| 93 | union dummy_u
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| 94 | {
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| 95 | char data[ sizeof(T) ];
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| 96 | BOOST_DEDUCED_TYPENAME type_with_alignment<
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| 97 | ::boost::alignment_of<T>::value >::type aligner_;
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| 98 | } dummy_ ;
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| 99 |
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| 100 | public:
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| 101 |
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| 102 | void const* address() const { return &dummy_.data[0]; }
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| 103 | void * address() { return &dummy_.data[0]; }
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| 104 | } ;
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| 105 |
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| 106 | template<class T>
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| 107 | struct types_when_isnt_ref
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| 108 | {
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| 109 | typedef T const& reference_const_type ;
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| 110 | typedef T & reference_type ;
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| 111 | typedef T const* pointer_const_type ;
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| 112 | typedef T * pointer_type ;
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| 113 | typedef T const& argument_type ;
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| 114 | } ;
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| 115 | template<class T>
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| 116 | struct types_when_is_ref
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| 117 | {
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| 118 | typedef BOOST_DEDUCED_TYPENAME remove_reference<T>::type raw_type ;
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| 119 |
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| 120 | typedef raw_type& reference_const_type ;
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| 121 | typedef raw_type& reference_type ;
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| 122 | typedef raw_type* pointer_const_type ;
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| 123 | typedef raw_type* pointer_type ;
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| 124 | typedef raw_type& argument_type ;
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| 125 | } ;
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| 126 |
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| 127 | struct optional_tag {} ;
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| 128 |
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| 129 | template<class T>
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| 130 | class optional_base : public optional_tag
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| 131 | {
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| 132 | private :
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| 133 |
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| 134 | typedef BOOST_DEDUCED_TYPENAME detail::make_reference_content<T>::type internal_type ;
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| 135 |
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| 136 | typedef aligned_storage<internal_type> storage_type ;
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| 137 |
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| 138 | typedef types_when_isnt_ref<T> types_when_not_ref ;
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| 139 | typedef types_when_is_ref<T> types_when_ref ;
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| 140 |
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| 141 | typedef optional_base<T> this_type ;
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| 142 |
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| 143 | protected :
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| 144 |
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| 145 | typedef T value_type ;
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| 146 |
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| 147 | typedef mpl::true_ is_reference_tag ;
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| 148 | typedef mpl::false_ is_not_reference_tag ;
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| 149 |
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| 150 | typedef BOOST_DEDUCED_TYPENAME is_reference<T>::type is_reference_predicate ;
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| 151 |
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| 152 | typedef BOOST_DEDUCED_TYPENAME mpl::if_<is_reference_predicate,types_when_ref,types_when_not_ref>::type types ;
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| 153 |
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| 154 | typedef bool (this_type::*unspecified_bool_type)() const;
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| 155 |
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| 156 | typedef BOOST_DEDUCED_TYPENAME types::reference_type reference_type ;
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| 157 | typedef BOOST_DEDUCED_TYPENAME types::reference_const_type reference_const_type ;
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| 158 | typedef BOOST_DEDUCED_TYPENAME types::pointer_type pointer_type ;
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| 159 | typedef BOOST_DEDUCED_TYPENAME types::pointer_const_type pointer_const_type ;
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| 160 | typedef BOOST_DEDUCED_TYPENAME types::argument_type argument_type ;
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| 161 |
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| 162 | // Creates an optional<T> uninitialized.
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| 163 | // No-throw
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| 164 | optional_base()
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| 165 | :
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| 166 | m_initialized(false) {}
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| 167 |
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| 168 | // Creates an optional<T> uninitialized.
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| 169 | // No-throw
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| 170 | optional_base ( none_t const& )
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| 171 | :
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| 172 | m_initialized(false) {}
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| 173 |
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| 174 | // Creates an optional<T> initialized with 'val'.
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| 175 | // Can throw if T::T(T const&) does
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| 176 | optional_base ( argument_type val )
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| 177 | :
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| 178 | m_initialized(false)
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| 179 | {
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| 180 | construct(val);
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| 181 | }
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| 182 |
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| 183 | // Creates a deep copy of another optional<T>
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| 184 | // Can throw if T::T(T const&) does
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| 185 | optional_base ( optional_base const& rhs )
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| 186 | :
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| 187 | m_initialized(false)
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| 188 | {
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| 189 | if ( rhs.is_initialized() )
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| 190 | construct(rhs.get_impl());
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| 191 | }
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| 192 |
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| 193 |
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| 194 | // This is used for both converting and in-place constructions.
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| 195 | // Derived classes use the 'tag' to select the appropriate
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| 196 | // implementation (the correct 'construct()' overload)
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| 197 | template<class Expr>
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| 198 | explicit optional_base ( Expr const& expr, Expr const* tag )
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| 199 | :
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| 200 | m_initialized(false)
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| 201 | {
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| 202 | construct(expr,tag);
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| 203 | }
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| 204 |
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| 205 |
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| 206 |
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| 207 | // No-throw (assuming T::~T() doesn't)
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| 208 | ~optional_base() { destroy() ; }
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| 209 |
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| 210 | // Assigns from another optional<T> (deep-copies the rhs value)
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| 211 | void assign ( optional_base const& rhs )
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| 212 | {
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| 213 | if (is_initialized())
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| 214 | {
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| 215 | if ( rhs.is_initialized() )
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| 216 | assign_value(rhs.get_impl(), is_reference_predicate() );
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| 217 | else destroy();
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| 218 | }
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| 219 | else
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| 220 | {
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| 221 | if ( rhs.is_initialized() )
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| 222 | construct(rhs.get_impl());
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| 223 | }
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| 224 | }
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| 225 |
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| 226 | // Assigns from a T (deep-copies the rhs value)
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| 227 | void assign ( argument_type val )
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| 228 | {
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| 229 | if (is_initialized())
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| 230 | assign_value(val, is_reference_predicate() );
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| 231 | else construct(val);
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| 232 | }
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| 233 |
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| 234 | // Assigns from "none", destroying the current value, if any, leaving this UNINITIALIZED
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| 235 | // No-throw (assuming T::~T() doesn't)
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| 236 | void assign ( none_t const& ) { destroy(); }
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| 237 |
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| 238 | #ifndef BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT
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| 239 | template<class Expr>
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| 240 | void assign_expr ( Expr const& expr, Expr const* tag )
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| 241 | {
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| 242 | if (is_initialized())
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| 243 | assign_expr_to_initialized(expr,tag);
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| 244 | else construct(expr,tag);
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| 245 | }
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| 246 | #endif
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| 247 |
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| 248 | public :
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| 249 |
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| 250 | // Destroys the current value, if any, leaving this UNINITIALIZED
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| 251 | // No-throw (assuming T::~T() doesn't)
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| 252 | void reset() { destroy(); }
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| 253 |
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| 254 | // Replaces the current value -if any- with 'val'
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| 255 | void reset ( argument_type val ) { assign(val); }
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| 256 |
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| 257 | // Returns a pointer to the value if this is initialized, otherwise,
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| 258 | // returns NULL.
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| 259 | // No-throw
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| 260 | pointer_const_type get_ptr() const { return m_initialized ? get_ptr_impl() : 0 ; }
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| 261 | pointer_type get_ptr() { return m_initialized ? get_ptr_impl() : 0 ; }
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| 262 |
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| 263 | bool is_initialized() const { return m_initialized ; }
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| 264 |
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| 265 | protected :
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| 266 |
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| 267 | void construct ( argument_type val )
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| 268 | {
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| 269 | new (m_storage.address()) internal_type(val) ;
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| 270 | m_initialized = true ;
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| 271 | }
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| 272 |
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| 273 | #ifndef BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT
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| 274 | // Constructs in-place using the given factory
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| 275 | template<class Expr>
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| 276 | void construct ( Expr const& factory, in_place_factory_base const* )
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| 277 | {
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| 278 | BOOST_STATIC_ASSERT ( ::boost::mpl::not_<is_reference_predicate>::value ) ;
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| 279 | factory.BOOST_NESTED_TEMPLATE apply<value_type>(m_storage.address()) ;
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| 280 | m_initialized = true ;
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| 281 | }
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| 282 |
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| 283 | // Constructs in-place using the given typed factory
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| 284 | template<class Expr>
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| 285 | void construct ( Expr const& factory, typed_in_place_factory_base const* )
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| 286 | {
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| 287 | BOOST_STATIC_ASSERT ( ::boost::mpl::not_<is_reference_predicate>::value ) ;
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| 288 | factory.apply(m_storage.address()) ;
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| 289 | m_initialized = true ;
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| 290 | }
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| 291 |
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| 292 | template<class Expr>
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| 293 | void assign_expr_to_initialized ( Expr const& factory, in_place_factory_base const* tag )
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| 294 | {
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| 295 | destroy();
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| 296 | construct(factory,tag);
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| 297 | }
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| 298 |
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| 299 | // Constructs in-place using the given typed factory
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| 300 | template<class Expr>
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| 301 | void assign_expr_to_initialized ( Expr const& factory, typed_in_place_factory_base const* tag )
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| 302 | {
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| 303 | destroy();
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| 304 | construct(factory,tag);
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| 305 | }
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| 306 | #endif
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| 307 |
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| 308 | // Constructs using any expression implicitely convertible to the single argument
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| 309 | // of a one-argument T constructor.
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| 310 | // Converting constructions of optional<T> from optional<U> uses this function with
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| 311 | // 'Expr' being of type 'U' and relying on a converting constructor of T from U.
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| 312 | template<class Expr>
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| 313 | void construct ( Expr const& expr, void const* )
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| 314 | {
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| 315 | new (m_storage.address()) internal_type(expr) ;
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| 316 | m_initialized = true ;
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| 317 | }
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| 318 |
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| 319 | // Assigns using a form any expression implicitely convertible to the single argument
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| 320 | // of a T's assignment operator.
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| 321 | // Converting assignments of optional<T> from optional<U> uses this function with
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| 322 | // 'Expr' being of type 'U' and relying on a converting assignment of T from U.
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| 323 | template<class Expr>
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| 324 | void assign_expr_to_initialized ( Expr const& expr, void const* )
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| 325 | {
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| 326 | assign_value(expr, is_reference_predicate());
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| 327 | }
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| 328 |
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| 329 | #ifdef BOOST_OPTIONAL_WEAK_OVERLOAD_RESOLUTION
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| 330 | // BCB5.64 (and probably lower versions) workaround.
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| 331 | // The in-place factories are supported by means of catch-all constructors
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| 332 | // and assignment operators (the functions are parameterized in terms of
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| 333 | // an arbitrary 'Expr' type)
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| 334 | // This compiler incorrectly resolves the overload set and sinks optional<T> and optional<U>
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| 335 | // to the 'Expr'-taking functions even though explicit overloads are present for them.
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| 336 | // Thus, the following overload is needed to properly handle the case when the 'lhs'
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| 337 | // is another optional.
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| 338 | //
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| 339 | // For VC<=70 compilers this workaround dosen't work becasue the comnpiler issues and error
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| 340 | // instead of choosing the wrong overload
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| 341 | //
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| 342 | // Notice that 'Expr' will be optional<T> or optional<U> (but not optional_base<..>)
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| 343 | template<class Expr>
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| 344 | void construct ( Expr const& expr, optional_tag const* )
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| 345 | {
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| 346 | if ( expr.is_initialized() )
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| 347 | {
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| 348 | // An exception can be thrown here.
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| 349 | // It it happens, THIS will be left uninitialized.
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| 350 | new (m_storage.address()) internal_type(expr.get()) ;
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| 351 | m_initialized = true ;
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| 352 | }
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| 353 | }
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| 354 | #endif
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| 355 |
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| 356 | void assign_value ( argument_type val, is_not_reference_tag ) { get_impl() = val; }
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| 357 | void assign_value ( argument_type val, is_reference_tag ) { construct(val); }
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| 358 |
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| 359 | void destroy()
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| 360 | {
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| 361 | if ( m_initialized )
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| 362 | destroy_impl(is_reference_predicate()) ;
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| 363 | }
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| 364 |
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| 365 | unspecified_bool_type safe_bool() const { return m_initialized ? &this_type::is_initialized : 0 ; }
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| 366 |
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| 367 | reference_const_type get_impl() const { return dereference(get_object(), is_reference_predicate() ) ; }
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| 368 | reference_type get_impl() { return dereference(get_object(), is_reference_predicate() ) ; }
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| 369 |
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| 370 | pointer_const_type get_ptr_impl() const { return cast_ptr(get_object(), is_reference_predicate() ) ; }
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| 371 | pointer_type get_ptr_impl() { return cast_ptr(get_object(), is_reference_predicate() ) ; }
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| 372 |
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| 373 | private :
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| 374 |
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| 375 | // internal_type can be either T or reference_content<T>
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| 376 | internal_type const* get_object() const { return static_cast<internal_type const*>(m_storage.address()); }
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| 377 | internal_type * get_object() { return static_cast<internal_type *> (m_storage.address()); }
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| 378 |
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| 379 | // reference_content<T> lacks an implicit conversion to T&, so the following is needed to obtain a proper reference.
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| 380 | reference_const_type dereference( internal_type const* p, is_not_reference_tag ) const { return *p ; }
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| 381 | reference_type dereference( internal_type* p, is_not_reference_tag ) { return *p ; }
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| 382 | reference_const_type dereference( internal_type const* p, is_reference_tag ) const { return p->get() ; }
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| 383 | reference_type dereference( internal_type* p, is_reference_tag ) { return p->get() ; }
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| 384 |
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| 385 | #if BOOST_WORKAROUND(__BORLANDC__, <= 0x564)
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| 386 | void destroy_impl ( is_not_reference_tag ) { get_ptr_impl()->internal_type::~internal_type() ; m_initialized = false ; }
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| 387 | #else
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| 388 | void destroy_impl ( is_not_reference_tag ) { get_ptr_impl()->T::~T() ; m_initialized = false ; }
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| 389 | #endif
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| 390 |
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| 391 | void destroy_impl ( is_reference_tag ) { m_initialized = false ; }
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| 392 |
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| 393 | // If T is of reference type, trying to get a pointer to the held value must result in a compile-time error.
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| 394 | // Decent compilers should disallow conversions from reference_content<T>* to T*, but just in case,
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| 395 | // the following olverloads are used to filter out the case and guarantee an error in case of T being a reference.
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| 396 | pointer_const_type cast_ptr( internal_type const* p, is_not_reference_tag ) const { return p ; }
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| 397 | pointer_type cast_ptr( internal_type * p, is_not_reference_tag ) { return p ; }
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| 398 |
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| 399 | bool m_initialized ;
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| 400 | storage_type m_storage ;
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| 401 | } ;
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| 402 |
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| 403 | } // namespace optional_detail
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| 404 |
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| 405 | template<class T>
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| 406 | class optional : public optional_detail::optional_base<T>
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| 407 | {
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| 408 | typedef optional_detail::optional_base<T> base ;
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| 409 |
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| 410 | typedef BOOST_DEDUCED_TYPENAME base::unspecified_bool_type unspecified_bool_type ;
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| 411 |
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| 412 | public :
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| 413 |
|
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| 414 | typedef optional<T> this_type ;
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| 415 |
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| 416 | typedef BOOST_DEDUCED_TYPENAME base::value_type value_type ;
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| 417 | typedef BOOST_DEDUCED_TYPENAME base::reference_type reference_type ;
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| 418 | typedef BOOST_DEDUCED_TYPENAME base::reference_const_type reference_const_type ;
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| 419 | typedef BOOST_DEDUCED_TYPENAME base::pointer_type pointer_type ;
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| 420 | typedef BOOST_DEDUCED_TYPENAME base::pointer_const_type pointer_const_type ;
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| 421 | typedef BOOST_DEDUCED_TYPENAME base::argument_type argument_type ;
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| 422 |
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| 423 | // Creates an optional<T> uninitialized.
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| 424 | // No-throw
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| 425 | optional() : base() {}
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| 426 |
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| 427 | // Creates an optional<T> uninitialized.
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| 428 | // No-throw
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| 429 | optional( none_t const& none_ ) : base(none_) {}
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| 430 |
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| 431 | // Creates an optional<T> initialized with 'val'.
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| 432 | // Can throw if T::T(T const&) does
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| 433 | optional ( argument_type val ) : base(val) {}
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| 434 |
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| 435 |
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| 436 | #ifndef BOOST_OPTIONAL_NO_CONVERTING_COPY_CTOR
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| 437 | // NOTE: MSVC needs templated versions first
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| 438 |
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| 439 | // Creates a deep copy of another convertible optional<U>
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| 440 | // Requires a valid conversion from U to T.
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| 441 | // Can throw if T::T(U const&) does
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| 442 | template<class U>
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| 443 | explicit optional ( optional<U> const& rhs )
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| 444 | :
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| 445 | base()
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| 446 | {
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| 447 | if ( rhs.is_initialized() )
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| 448 | this->construct(rhs.get());
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| 449 | }
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| 450 | #endif
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| 451 |
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| 452 | #ifndef BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT
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| 453 | // Creates an optional<T> with an expression which can be either
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| 454 | // (a) An instance of InPlaceFactory (i.e. in_place(a,b,...,n);
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| 455 | // (b) An instance of TypedInPlaceFactory ( i.e. in_place<T>(a,b,...,n);
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| 456 | // (c) Any expression implicitely convertible to the single type
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| 457 | // of a one-argument T's constructor.
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| 458 | // (d*) Weak compilers (BCB) might also resolved Expr as optional<T> and optional<U>
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| 459 | // even though explicit overloads are present for these.
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| 460 | // Depending on the above some T ctor is called.
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| 461 | // Can throw is the resolved T ctor throws.
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| 462 | template<class Expr>
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| 463 | explicit optional ( Expr const& expr ) : base(expr,&expr) {}
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| 464 | #endif
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| 465 |
|
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| 466 | // Creates a deep copy of another optional<T>
|
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| 467 | // Can throw if T::T(T const&) does
|
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| 468 | optional ( optional const& rhs ) : base(rhs) {}
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| 469 |
|
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| 470 | // No-throw (assuming T::~T() doesn't)
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| 471 | ~optional() {}
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| 472 |
|
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| 473 | #if !defined(BOOST_OPTIONAL_NO_INPLACE_FACTORY_SUPPORT) && !defined(BOOST_OPTIONAL_WEAK_OVERLOAD_RESOLUTION)
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| 474 | // Assigns from an expression. See corresponding constructor.
|
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| 475 | // Basic Guarantee: If the resolved T ctor throws, this is left UNINITIALIZED
|
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| 476 | template<class Expr>
|
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| 477 | optional& operator= ( Expr expr )
|
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| 478 | {
|
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| 479 | this->assign_expr(expr,&expr);
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| 480 | return *this ;
|
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| 481 | }
|
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| 482 | #endif
|
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| 483 |
|
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| 484 | #ifndef BOOST_OPTIONAL_NO_CONVERTING_ASSIGNMENT
|
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| 485 | // Assigns from another convertible optional<U> (converts && deep-copies the rhs value)
|
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| 486 | // Requires a valid conversion from U to T.
|
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| 487 | // Basic Guarantee: If T::T( U const& ) throws, this is left UNINITIALIZED
|
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| 488 | template<class U>
|
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| 489 | optional& operator= ( optional<U> const& rhs )
|
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| 490 | {
|
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| 491 | this->assign(rhs.get());
|
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| 492 | return *this ;
|
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| 493 | }
|
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| 494 | #endif
|
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| 495 |
|
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| 496 | // Assigns from another optional<T> (deep-copies the rhs value)
|
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| 497 | // Basic Guarantee: If T::T( T const& ) throws, this is left UNINITIALIZED
|
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| 498 | // (NOTE: On BCB, this operator is not actually called and left is left UNMODIFIED in case of a throw)
|
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| 499 | optional& operator= ( optional const& rhs )
|
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| 500 | {
|
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| 501 | this->assign( rhs ) ;
|
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| 502 | return *this ;
|
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| 503 | }
|
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| 504 |
|
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| 505 | // Assigns from a T (deep-copies the rhs value)
|
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| 506 | // Basic Guarantee: If T::( T const& ) throws, this is left UNINITIALIZED
|
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| 507 | optional& operator= ( argument_type val )
|
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| 508 | {
|
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| 509 | this->assign( val ) ;
|
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| 510 | return *this ;
|
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| 511 | }
|
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| 512 |
|
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| 513 | // Assigns from a "none"
|
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| 514 | // Which destroys the current value, if any, leaving this UNINITIALIZED
|
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| 515 | // No-throw (assuming T::~T() doesn't)
|
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| 516 | optional& operator= ( none_t const& none_ )
|
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| 517 | {
|
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| 518 | this->assign( none_ ) ;
|
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| 519 | return *this ;
|
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| 520 | }
|
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| 521 |
|
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| 522 | // Returns a reference to the value if this is initialized, otherwise,
|
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| 523 | // the behaviour is UNDEFINED
|
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| 524 | // No-throw
|
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| 525 | reference_const_type get() const { BOOST_ASSERT(this->is_initialized()) ; return this->get_impl(); }
|
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| 526 | reference_type get() { BOOST_ASSERT(this->is_initialized()) ; return this->get_impl(); }
|
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| 527 |
|
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| 528 | // Returns a pointer to the value if this is initialized, otherwise,
|
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| 529 | // the behaviour is UNDEFINED
|
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| 530 | // No-throw
|
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| 531 | pointer_const_type operator->() const { BOOST_ASSERT(this->is_initialized()) ; return this->get_ptr_impl() ; }
|
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| 532 | pointer_type operator->() { BOOST_ASSERT(this->is_initialized()) ; return this->get_ptr_impl() ; }
|
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| 533 |
|
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| 534 | // Returns a reference to the value if this is initialized, otherwise,
|
---|
| 535 | // the behaviour is UNDEFINED
|
---|
| 536 | // No-throw
|
---|
| 537 | reference_const_type operator *() const { return this->get() ; }
|
---|
| 538 | reference_type operator *() { return this->get() ; }
|
---|
| 539 |
|
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| 540 | // implicit conversion to "bool"
|
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| 541 | // No-throw
|
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| 542 | operator unspecified_bool_type() const { return this->safe_bool() ; }
|
---|
| 543 |
|
---|
| 544 | // This is provided for those compilers which don't like the conversion to bool
|
---|
| 545 | // on some contexts.
|
---|
| 546 | bool operator!() const { return !this->is_initialized() ; }
|
---|
| 547 | } ;
|
---|
| 548 |
|
---|
| 549 | // Returns a reference to the value if this is initialized, otherwise, the behaviour is UNDEFINED.
|
---|
| 550 | // No-throw
|
---|
| 551 | template<class T>
|
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| 552 | inline
|
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| 553 | BOOST_DEDUCED_TYPENAME optional<T>::reference_const_type
|
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| 554 | get ( optional<T> const& opt )
|
---|
| 555 | {
|
---|
| 556 | return opt.get() ;
|
---|
| 557 | }
|
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| 558 |
|
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| 559 | template<class T>
|
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| 560 | inline
|
---|
| 561 | BOOST_DEDUCED_TYPENAME optional<T>::reference_type
|
---|
| 562 | get ( optional<T>& opt )
|
---|
| 563 | {
|
---|
| 564 | return opt.get() ;
|
---|
| 565 | }
|
---|
| 566 |
|
---|
| 567 | // Returns a pointer to the value if this is initialized, otherwise, returns NULL.
|
---|
| 568 | // No-throw
|
---|
| 569 | template<class T>
|
---|
| 570 | inline
|
---|
| 571 | BOOST_DEDUCED_TYPENAME optional<T>::pointer_const_type
|
---|
| 572 | get ( optional<T> const* opt )
|
---|
| 573 | {
|
---|
| 574 | return opt->get_ptr() ;
|
---|
| 575 | }
|
---|
| 576 |
|
---|
| 577 | template<class T>
|
---|
| 578 | inline
|
---|
| 579 | BOOST_DEDUCED_TYPENAME optional<T>::pointer_type
|
---|
| 580 | get ( optional<T>* opt )
|
---|
| 581 | {
|
---|
| 582 | return opt->get_ptr() ;
|
---|
| 583 | }
|
---|
| 584 |
|
---|
| 585 | // Returns a pointer to the value if this is initialized, otherwise, returns NULL.
|
---|
| 586 | // No-throw
|
---|
| 587 | template<class T>
|
---|
| 588 | inline
|
---|
| 589 | BOOST_DEDUCED_TYPENAME optional<T>::pointer_const_type
|
---|
| 590 | get_pointer ( optional<T> const& opt )
|
---|
| 591 | {
|
---|
| 592 | return opt.get_ptr() ;
|
---|
| 593 | }
|
---|
| 594 |
|
---|
| 595 | template<class T>
|
---|
| 596 | inline
|
---|
| 597 | BOOST_DEDUCED_TYPENAME optional<T>::pointer_type
|
---|
| 598 | get_pointer ( optional<T>& opt )
|
---|
| 599 | {
|
---|
| 600 | return opt.get_ptr() ;
|
---|
| 601 | }
|
---|
| 602 |
|
---|
| 603 | // optional's relational operators ( ==, !=, <, >, <=, >= ) have deep-semantics (compare values).
|
---|
| 604 | // WARNING: This is UNLIKE pointers. Use equal_pointees()/less_pointess() in generic code instead.
|
---|
| 605 |
|
---|
| 606 | template<class T>
|
---|
| 607 | inline
|
---|
| 608 | bool operator == ( optional<T> const& x, optional<T> const& y )
|
---|
| 609 | { return equal_pointees(x,y); }
|
---|
| 610 |
|
---|
| 611 | template<class T>
|
---|
| 612 | inline
|
---|
| 613 | bool operator < ( optional<T> const& x, optional<T> const& y )
|
---|
| 614 | { return less_pointees(x,y); }
|
---|
| 615 |
|
---|
| 616 | template<class T>
|
---|
| 617 | inline
|
---|
| 618 | bool operator != ( optional<T> const& x, optional<T> const& y )
|
---|
| 619 | { return !( x == y ) ; }
|
---|
| 620 |
|
---|
| 621 | template<class T>
|
---|
| 622 | inline
|
---|
| 623 | bool operator > ( optional<T> const& x, optional<T> const& y )
|
---|
| 624 | { return y < x ; }
|
---|
| 625 |
|
---|
| 626 | template<class T>
|
---|
| 627 | inline
|
---|
| 628 | bool operator <= ( optional<T> const& x, optional<T> const& y )
|
---|
| 629 | { return !( y < x ) ; }
|
---|
| 630 |
|
---|
| 631 | template<class T>
|
---|
| 632 | inline
|
---|
| 633 | bool operator >= ( optional<T> const& x, optional<T> const& y )
|
---|
| 634 | { return !( x < y ) ; }
|
---|
| 635 |
|
---|
| 636 | template<class T>
|
---|
| 637 | inline
|
---|
| 638 | bool operator == ( optional<T> const& x, none_t const& )
|
---|
| 639 | { return equal_pointees(x, optional<T>() ); }
|
---|
| 640 |
|
---|
| 641 | template<class T>
|
---|
| 642 | inline
|
---|
| 643 | bool operator < ( optional<T> const& x, none_t const& )
|
---|
| 644 | { return less_pointees(x,optional<T>() ); }
|
---|
| 645 |
|
---|
| 646 | template<class T>
|
---|
| 647 | inline
|
---|
| 648 | bool operator != ( optional<T> const& x, none_t const& y )
|
---|
| 649 | { return !( x == y ) ; }
|
---|
| 650 |
|
---|
| 651 | template<class T>
|
---|
| 652 | inline
|
---|
| 653 | bool operator > ( optional<T> const& x, none_t const& y )
|
---|
| 654 | { return y < x ; }
|
---|
| 655 |
|
---|
| 656 | template<class T>
|
---|
| 657 | inline
|
---|
| 658 | bool operator <= ( optional<T> const& x, none_t const& y )
|
---|
| 659 | { return !( y < x ) ; }
|
---|
| 660 |
|
---|
| 661 | template<class T>
|
---|
| 662 | inline
|
---|
| 663 | bool operator >= ( optional<T> const& x, none_t const& y )
|
---|
| 664 | { return !( x < y ) ; }
|
---|
| 665 |
|
---|
| 666 | template<class T>
|
---|
| 667 | inline
|
---|
| 668 | bool operator == ( none_t const& x, optional<T> const& y )
|
---|
| 669 | { return equal_pointees(optional<T>() ,y); }
|
---|
| 670 |
|
---|
| 671 | template<class T>
|
---|
| 672 | inline
|
---|
| 673 | bool operator < ( none_t const& x, optional<T> const& y )
|
---|
| 674 | { return less_pointees(optional<T>() ,y); }
|
---|
| 675 |
|
---|
| 676 | template<class T>
|
---|
| 677 | inline
|
---|
| 678 | bool operator != ( none_t const& x, optional<T> const& y )
|
---|
| 679 | { return !( x == y ) ; }
|
---|
| 680 |
|
---|
| 681 | template<class T>
|
---|
| 682 | inline
|
---|
| 683 | bool operator > ( none_t const& x, optional<T> const& y )
|
---|
| 684 | { return y < x ; }
|
---|
| 685 |
|
---|
| 686 | template<class T>
|
---|
| 687 | inline
|
---|
| 688 | bool operator <= ( none_t const& x, optional<T> const& y )
|
---|
| 689 | { return !( y < x ) ; }
|
---|
| 690 |
|
---|
| 691 | template<class T>
|
---|
| 692 | inline
|
---|
| 693 | bool operator >= ( none_t const& x, optional<T> const& y )
|
---|
| 694 | { return !( x < y ) ; }
|
---|
| 695 |
|
---|
| 696 | //
|
---|
| 697 | // The following swap implementation follows the GCC workaround as found in
|
---|
| 698 | // "boost/detail/compressed_pair.hpp"
|
---|
| 699 | //
|
---|
| 700 | namespace optional_detail {
|
---|
| 701 |
|
---|
| 702 | // GCC < 3.2 gets the using declaration at namespace scope (FLC, DWA)
|
---|
| 703 | #if BOOST_WORKAROUND(__GNUC__, < 3) \
|
---|
| 704 | || BOOST_WORKAROUND(__GNUC__, == 3) && __GNUC_MINOR__ <= 2
|
---|
| 705 | using std::swap;
|
---|
| 706 | #define BOOST_OPTIONAL_STD_SWAP_INTRODUCED_AT_NS_SCOPE
|
---|
| 707 | #endif
|
---|
| 708 |
|
---|
| 709 | // optional's swap:
|
---|
| 710 | // If both are initialized, calls swap(T&, T&). If this swap throws, both will remain initialized but their values are now unspecified.
|
---|
| 711 | // If only one is initialized, calls U.reset(*I), THEN I.reset().
|
---|
| 712 | // If U.reset(*I) throws, both are left UNCHANGED (U is kept uinitialized and I is never reset)
|
---|
| 713 | // If both are uninitialized, do nothing (no-throw)
|
---|
| 714 | template<class T>
|
---|
| 715 | inline
|
---|
| 716 | void optional_swap ( optional<T>& x, optional<T>& y )
|
---|
| 717 | {
|
---|
| 718 | if ( !x && !!y )
|
---|
| 719 | {
|
---|
| 720 | x.reset(*y);
|
---|
| 721 | y.reset();
|
---|
| 722 | }
|
---|
| 723 | else if ( !!x && !y )
|
---|
| 724 | {
|
---|
| 725 | y.reset(*x);
|
---|
| 726 | x.reset();
|
---|
| 727 | }
|
---|
| 728 | else if ( !!x && !!y )
|
---|
| 729 | {
|
---|
| 730 | // GCC > 3.2 and all other compilers have the using declaration at function scope (FLC)
|
---|
| 731 | #ifndef BOOST_OPTIONAL_STD_SWAP_INTRODUCED_AT_NS_SCOPE
|
---|
| 732 | // allow for Koenig lookup
|
---|
| 733 | using std::swap ;
|
---|
| 734 | #endif
|
---|
| 735 | swap(*x,*y);
|
---|
| 736 | }
|
---|
| 737 | }
|
---|
| 738 |
|
---|
| 739 | } // namespace optional_detail
|
---|
| 740 |
|
---|
| 741 | template<class T> inline void swap ( optional<T>& x, optional<T>& y )
|
---|
| 742 | {
|
---|
| 743 | optional_detail::optional_swap(x,y);
|
---|
| 744 | }
|
---|
| 745 |
|
---|
| 746 | } // namespace boost
|
---|
| 747 |
|
---|
| 748 | #endif
|
---|
| 749 |
|
---|