mirror of
https://github.com/pocketpy/pocketpy
synced 2025-10-20 11:30:18 +00:00
623 lines
21 KiB
C++
623 lines
21 KiB
C++
/***************************************************************************
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* Copyright (c) Johan Mabille, Sylvain Corlay and Wolf Vollprecht *
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* Copyright (c) QuantStack *
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* *
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* Distributed under the terms of the BSD 3-Clause License. *
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* *
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* The full license is in the file LICENSE, distributed with this software. *
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****************************************************************************/
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#ifndef XTL_OPTIONAL_SEQUENCE_HPP
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#define XTL_OPTIONAL_SEQUENCE_HPP
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#include <array>
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#include <bitset>
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#include <cstddef>
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#include <iterator>
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#include <memory>
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#include <utility>
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#include <vector>
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#include "xdynamic_bitset.hpp"
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#include "xiterator_base.hpp"
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#include "xoptional.hpp"
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#include "xsequence.hpp"
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namespace xtl
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{
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/**************************************
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* Optimized 1-D xoptional containers *
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**************************************/
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template <class ITV, class ITB>
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class xoptional_iterator;
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template <class BC, class FC>
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class xoptional_sequence
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{
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public:
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// Internal typedefs
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using base_container_type = BC;
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using base_value_type = typename base_container_type::value_type;
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using base_reference = typename base_container_type::reference;
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using base_const_reference = typename base_container_type::const_reference;
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using flag_container_type = FC;
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using flag_type = typename flag_container_type::value_type;
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using flag_reference = typename flag_container_type::reference;
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using flag_const_reference = typename flag_container_type::const_reference;
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// Container typedefs
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using value_type = xoptional<base_value_type, flag_type>;
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using reference = xoptional<base_reference, flag_reference>;
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using const_reference = xoptional<base_const_reference, flag_const_reference>;
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using pointer = xclosure_pointer<reference>;
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using const_pointer = xclosure_pointer<const_reference>;
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// Other typedefs
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using size_type = typename base_container_type::size_type;
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using difference_type = typename base_container_type::difference_type;
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using iterator = xoptional_iterator<typename base_container_type::iterator,
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typename flag_container_type::iterator>;
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using const_iterator = xoptional_iterator<typename base_container_type::const_iterator,
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typename flag_container_type::const_iterator>;
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using reverse_iterator = xoptional_iterator<typename base_container_type::reverse_iterator,
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typename flag_container_type::reverse_iterator>;
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using const_reverse_iterator = xoptional_iterator<typename base_container_type::const_reverse_iterator,
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typename flag_container_type::const_reverse_iterator>;
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bool empty() const noexcept;
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size_type size() const noexcept;
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size_type max_size() const noexcept;
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reference at(size_type i);
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const_reference at(size_type i) const;
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reference operator[](size_type i);
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const_reference operator[](size_type i) const;
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reference front();
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const_reference front() const;
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reference back();
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const_reference back() const;
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iterator begin() noexcept;
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iterator end() noexcept;
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const_iterator begin() const noexcept;
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const_iterator end() const noexcept;
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const_iterator cbegin() const noexcept;
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const_iterator cend() const noexcept;
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reverse_iterator rbegin() noexcept;
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reverse_iterator rend() noexcept;
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const_reverse_iterator rbegin() const noexcept;
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const_reverse_iterator rend() const noexcept;
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const_reverse_iterator crbegin() const noexcept;
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const_reverse_iterator crend() const noexcept;
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base_container_type value() && noexcept;
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base_container_type& value() & noexcept;
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const base_container_type& value() const & noexcept;
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flag_container_type has_value() && noexcept;
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flag_container_type& has_value() & noexcept;
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const flag_container_type& has_value() const & noexcept;
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protected:
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xoptional_sequence() = default;
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xoptional_sequence(size_type s, const base_value_type& v);
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template <class CTO, class CBO>
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xoptional_sequence(size_type s, const xoptional<CTO, CBO>& v);
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~xoptional_sequence() = default;
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xoptional_sequence(const xoptional_sequence&) = default;
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xoptional_sequence& operator=(const xoptional_sequence&) = default;
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xoptional_sequence(xoptional_sequence&&) = default;
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xoptional_sequence& operator=(xoptional_sequence&&) = default;
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base_container_type m_values;
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flag_container_type m_flags;
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};
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template <class BC, class FC>
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bool operator==(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs);
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template <class BC, class FC>
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bool operator!=(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs);
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template <class BC, class FC>
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bool operator<(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs);
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template <class BC, class FC>
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bool operator<=(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs);
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template <class BC, class FC>
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bool operator>(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs);
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template <class BC, class FC>
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bool operator>=(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs);
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/********************************
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* xoptional_array declarations *
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********************************/
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// There is no value_type in std::bitset ...
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template <class T, std::size_t I, class BC = xdynamic_bitset<std::size_t>>
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class xoptional_array : public xoptional_sequence<std::array<T, I>, BC>
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{
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public:
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using self_type = xoptional_array;
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using base_container_type = std::array<T, I>;
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using flag_container_type = BC;
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using base_type = xoptional_sequence<base_container_type, flag_container_type>;
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using base_value_type = typename base_type::base_value_type;
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using size_type = typename base_type::size_type;
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xoptional_array() = default;
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xoptional_array(size_type s, const base_value_type& v);
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template <class CTO, class CBO>
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xoptional_array(size_type s, const xoptional<CTO, CBO>& v);
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};
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/********************
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* xoptional_vector *
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********************/
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template <class T, class A = std::allocator<T>, class BC = xdynamic_bitset<std::size_t>>
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class xoptional_vector : public xoptional_sequence<std::vector<T, A>, BC>
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{
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public:
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using self_type = xoptional_vector;
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using base_container_type = std::vector<T, A>;
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using flag_container_type = BC;
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using base_type = xoptional_sequence<base_container_type, flag_container_type>;
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using base_value_type = typename base_type::base_value_type;
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using allocator_type = A;
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using value_type = typename base_type::value_type;
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using size_type = typename base_type::size_type;
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using difference_type = typename base_type::difference_type;
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using reference = typename base_type::reference;
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using const_reference = typename base_type::const_reference;
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using pointer = typename base_type::pointer;
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using const_pointer = typename base_type::const_pointer;
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using iterator = typename base_type::iterator;
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using const_iterator = typename base_type::const_iterator;
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using reverse_iterator = typename base_type::reverse_iterator;
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using const_reverse_iterator = typename base_type::const_reverse_iterator;
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xoptional_vector() = default;
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xoptional_vector(size_type, const base_value_type&);
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template <class CTO, class CBO>
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xoptional_vector(size_type, const xoptional<CTO, CBO>&);
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void resize(size_type);
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void resize(size_type, const base_value_type&);
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template <class CTO, class CBO>
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void resize(size_type, const xoptional<CTO, CBO>&);
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};
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/**********************************
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* xoptional_iterator declaration *
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**********************************/
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template <class ITV, class ITB>
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struct xoptional_iterator_traits
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{
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using iterator_type = xoptional_iterator<ITV, ITB>;
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using value_type = xoptional<typename ITV::value_type, typename ITB::value_type>;
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using reference = xoptional<typename ITV::reference, typename ITB::reference>;
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using pointer = xclosure_pointer<reference>;
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using difference_type = typename ITV::difference_type;
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};
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template <class ITV, class ITB>
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class xoptional_iterator : public xrandom_access_iterator_base2<xoptional_iterator_traits<ITV, ITB>>
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{
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public:
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using self_type = xoptional_iterator<ITV, ITB>;
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using base_type = xrandom_access_iterator_base2<xoptional_iterator_traits<ITV, ITB>>;
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using value_type = typename base_type::value_type;
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using reference = typename base_type::reference;
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using pointer = typename base_type::pointer;
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using difference_type = typename base_type::difference_type;
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xoptional_iterator() = default;
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xoptional_iterator(ITV itv, ITB itb);
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self_type& operator++();
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self_type& operator--();
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self_type& operator+=(difference_type n);
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self_type& operator-=(difference_type n);
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difference_type operator-(const self_type& rhs) const;
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reference operator*() const;
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pointer operator->() const;
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bool operator==(const self_type& rhs) const;
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bool operator<(const self_type& rhs) const;
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private:
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ITV m_itv;
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ITB m_itb;
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};
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/*************************************
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* xoptional_sequence implementation *
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*************************************/
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template <class BC, class FC>
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inline xoptional_sequence<BC, FC>::xoptional_sequence(size_type s, const base_value_type& v)
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: m_values(make_sequence<base_container_type>(s, v)),
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m_flags(make_sequence<flag_container_type>(s, true))
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{
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}
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template <class BC, class FC>
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template <class CTO, class CBO>
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inline xoptional_sequence<BC, FC>::xoptional_sequence(size_type s, const xoptional<CTO, CBO>& v)
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: m_values(make_sequence<base_container_type>(s, v.value())), m_flags(make_sequence<flag_container_type>(s, v.has_value()))
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{
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::empty() const noexcept -> bool
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{
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return m_values.empty();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::size() const noexcept -> size_type
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{
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return m_values.size();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::max_size() const noexcept -> size_type
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{
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return m_values.max_size();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::at(size_type i) -> reference
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{
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return reference(m_values.at(i), m_flags.at(i));
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::at(size_type i) const -> const_reference
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{
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return const_reference(m_values.at(i), m_flags.at(i));
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::operator[](size_type i) -> reference
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{
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return reference(m_values[i], m_flags[i]);
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::operator[](size_type i) const -> const_reference
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{
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return const_reference(m_values[i], m_flags[i]);
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::front() -> reference
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{
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return reference(m_values.front(), m_flags.front());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::front() const -> const_reference
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{
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return const_reference(m_values.front(), m_flags.front());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::back() -> reference
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{
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return reference(m_values.back(), m_flags.back());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::back() const -> const_reference
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{
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return const_reference(m_values.back(), m_flags.back());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::begin() noexcept -> iterator
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{
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return iterator(m_values.begin(), m_flags.begin());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::end() noexcept -> iterator
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{
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return iterator(m_values.end(), m_flags.end());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::begin() const noexcept -> const_iterator
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{
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return cbegin();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::end() const noexcept -> const_iterator
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{
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return cend();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::cbegin() const noexcept -> const_iterator
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{
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return const_iterator(m_values.cbegin(), m_flags.cbegin());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::cend() const noexcept -> const_iterator
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{
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return const_iterator(m_values.cend(), m_flags.cend());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::rbegin() noexcept -> reverse_iterator
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{
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return reverse_iterator(m_values.rbegin(), m_flags.rbegin());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::rend() noexcept -> reverse_iterator
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{
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return reverse_iterator(m_values.rend(), m_flags.rend());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::rbegin() const noexcept -> const_reverse_iterator
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{
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return crbegin();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::rend() const noexcept -> const_reverse_iterator
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{
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return crend();
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::crbegin() const noexcept -> const_reverse_iterator
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{
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return const_reverse_iterator(m_values.crbegin(), m_flags.crbegin());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::crend() const noexcept -> const_reverse_iterator
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{
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return const_reverse_iterator(m_values.crend(), m_flags.crend());
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::value() && noexcept -> base_container_type
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{
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return m_values;
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::value() & noexcept -> base_container_type&
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{
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return m_values;
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::value() const & noexcept -> const base_container_type&
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{
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return m_values;
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::has_value() && noexcept-> flag_container_type
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{
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return m_flags;
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::has_value() & noexcept -> flag_container_type&
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{
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return m_flags;
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}
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template <class BC, class FC>
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inline auto xoptional_sequence<BC, FC>::has_value() const & noexcept -> const flag_container_type&
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{
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return m_flags;
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}
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template <class BC, class FC>
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inline bool operator==(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs)
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{
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return lhs.value() == rhs.value() && lhs.has_value() == rhs.has_value();
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}
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template <class BC, class FC>
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inline bool operator!=(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs)
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{
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return !(lhs == rhs);
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}
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template <class BC, class FC>
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inline bool operator<(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs)
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{
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return lhs.value() < rhs.value() && lhs.has_value() == rhs.has_value();
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}
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template <class BC, class FC>
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inline bool operator<=(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs)
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{
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return lhs.value() <= rhs.value() && lhs.has_value() == rhs.has_value();
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}
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template <class BC, class FC>
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inline bool operator>(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs)
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{
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return lhs.value() > rhs.value() && lhs.has_value() == rhs.has_value();
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}
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template <class BC, class FC>
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inline bool operator>=(const xoptional_sequence<BC, FC>& lhs, const xoptional_sequence<BC, FC>& rhs)
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{
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return lhs.value() >= rhs.value() && lhs.has_value() == rhs.has_value();
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}
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/**********************************
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* xoptional_array implementation *
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**********************************/
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template <class T, std::size_t I, class BC>
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xoptional_array<T, I, BC>::xoptional_array(size_type s, const base_value_type& v)
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: base_type(s, v)
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{
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}
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template <class T, std::size_t I, class BC>
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template <class CTO, class CBO>
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xoptional_array<T, I, BC>::xoptional_array(size_type s, const xoptional<CTO, CBO>& v)
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: base_type(s, v)
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{
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}
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/*******************************************************
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* xoptional_array and xoptional_vector implementation *
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*******************************************************/
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template <class T, class A, class BC>
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xoptional_vector<T, A, BC>::xoptional_vector(size_type s, const base_value_type& v)
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: base_type(s, v)
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{
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}
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|
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template <class T, class A, class BC>
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template <class CTO, class CBO>
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xoptional_vector<T, A, BC>::xoptional_vector(size_type s, const xoptional<CTO, CBO>& v)
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: base_type(s, v)
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{
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}
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|
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template <class T, class A, class BC>
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void xoptional_vector<T, A, BC>::resize(size_type s)
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{
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// Default to missing
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this->m_values.resize(s);
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this->m_flags.resize(s, false);
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}
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|
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template <class T, class A, class BC>
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void xoptional_vector<T, A, BC>::resize(size_type s, const base_value_type& v)
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|
{
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|
this->m_values.resize(s, v);
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this->m_flags.resize(s, true);
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}
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|
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template <class T, class A, class BC>
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template <class CTO, class CBO>
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void xoptional_vector<T, A, BC>::resize(size_type s, const xoptional<CTO, CBO>& v)
|
|
{
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|
this->m_values.resize(s, v.value());
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|
this->m_flags.resize(s, v.has_value());
|
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}
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|
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|
/*************************************
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|
* xoptional_iterator implementation *
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|
*************************************/
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|
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template <class ITV, class ITB>
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xoptional_iterator<ITV, ITB>::xoptional_iterator(ITV itv, ITB itb)
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|
: m_itv(itv), m_itb(itb)
|
|
{
|
|
}
|
|
|
|
template <class ITV, class ITB>
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|
auto xoptional_iterator<ITV, ITB>::operator++() -> self_type&
|
|
{
|
|
++m_itv;
|
|
++m_itb;
|
|
return *this;
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
auto xoptional_iterator<ITV, ITB>::operator--() -> self_type&
|
|
{
|
|
--m_itv;
|
|
--m_itb;
|
|
return *this;
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
auto xoptional_iterator<ITV, ITB>::operator+=(difference_type n) -> self_type&
|
|
{
|
|
m_itv += n;
|
|
m_itb += n;
|
|
return *this;
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
auto xoptional_iterator<ITV, ITB>::operator-=(difference_type n) -> self_type&
|
|
{
|
|
m_itv -= n;
|
|
m_itb -= n;
|
|
return *this;
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
auto xoptional_iterator<ITV, ITB>::operator-(const self_type& rhs) const -> difference_type
|
|
{
|
|
return m_itv - rhs.m_itv;
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
auto xoptional_iterator<ITV, ITB>::operator*() const -> reference
|
|
{
|
|
return reference(*m_itv, *m_itb);
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
auto xoptional_iterator<ITV, ITB>::operator-> () const -> pointer
|
|
{
|
|
return pointer(operator*());
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
bool xoptional_iterator<ITV, ITB>::operator==(const self_type& rhs) const
|
|
{
|
|
return m_itv == rhs.m_itv && m_itb == rhs.m_itb;
|
|
}
|
|
|
|
template <class ITV, class ITB>
|
|
bool xoptional_iterator<ITV, ITB>::operator<(const self_type& rhs) const
|
|
{
|
|
return m_itv < rhs.m_itv && m_itb < rhs.m_itb;
|
|
}
|
|
}
|
|
|
|
#endif
|