mirror of
https://github.com/pocketpy/pocketpy
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368 lines
11 KiB
C++
368 lines
11 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 XTENSOR_AXIS_SLICE_ITERATOR_HPP
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#define XTENSOR_AXIS_SLICE_ITERATOR_HPP
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#include "xstrided_view.hpp"
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namespace xt
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{
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/**
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* @class xaxis_slice_iterator
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* @brief Class for iteration over one-dimensional slices
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*
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* The xaxis_slice_iterator iterates over one-dimensional slices
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* oriented along the specified axis
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*
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* @tparam CT the closure type of the \ref xexpression
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*/
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template <class CT>
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class xaxis_slice_iterator
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{
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public:
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using self_type = xaxis_slice_iterator<CT>;
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using xexpression_type = std::decay_t<CT>;
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using size_type = typename xexpression_type::size_type;
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using difference_type = typename xexpression_type::difference_type;
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using shape_type = typename xexpression_type::shape_type;
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using strides_type = typename xexpression_type::strides_type;
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using value_type = xstrided_view<CT, shape_type>;
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using reference = std::remove_reference_t<apply_cv_t<CT, value_type>>;
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using pointer = xtl::xclosure_pointer<std::remove_reference_t<apply_cv_t<CT, value_type>>>;
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using iterator_category = std::forward_iterator_tag;
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template <class CTA>
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xaxis_slice_iterator(CTA&& e, size_type axis);
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template <class CTA>
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xaxis_slice_iterator(CTA&& e, size_type axis, size_type index, size_type offset);
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self_type& operator++();
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self_type operator++(int);
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reference operator*() const;
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pointer operator->() const;
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bool equal(const self_type& rhs) const;
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private:
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using storing_type = xtl::ptr_closure_type_t<CT>;
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mutable storing_type p_expression;
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size_type m_index;
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size_type m_offset;
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size_type m_axis_stride;
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size_type m_lower_shape;
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size_type m_upper_shape;
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size_type m_iter_size;
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bool m_is_target_axis;
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value_type m_sv;
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template <class T, class CTA>
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std::enable_if_t<std::is_pointer<T>::value, T> get_storage_init(CTA&& e) const;
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template <class T, class CTA>
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std::enable_if_t<!std::is_pointer<T>::value, T> get_storage_init(CTA&& e) const;
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};
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template <class CT>
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bool operator==(const xaxis_slice_iterator<CT>& lhs, const xaxis_slice_iterator<CT>& rhs);
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template <class CT>
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bool operator!=(const xaxis_slice_iterator<CT>& lhs, const xaxis_slice_iterator<CT>& rhs);
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template <class E>
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auto xaxis_slice_begin(E&& e);
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template <class E>
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auto xaxis_slice_begin(E&& e, typename std::decay_t<E>::size_type axis);
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template <class E>
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auto xaxis_slice_end(E&& e);
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template <class E>
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auto xaxis_slice_end(E&& e, typename std::decay_t<E>::size_type axis);
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/***************************************
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* xaxis_slice_iterator implementation *
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***************************************/
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template <class CT>
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template <class T, class CTA>
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inline std::enable_if_t<std::is_pointer<T>::value, T>
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xaxis_slice_iterator<CT>::get_storage_init(CTA&& e) const
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{
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return &e;
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}
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template <class CT>
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template <class T, class CTA>
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inline std::enable_if_t<!std::is_pointer<T>::value, T>
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xaxis_slice_iterator<CT>::get_storage_init(CTA&& e) const
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{
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return e;
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}
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/**
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* @name Constructors
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*/
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//@{
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/**
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* Constructs an xaxis_slice_iterator
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*
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* @param e the expression to iterate over
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* @param axis the axis to iterate over taking one dimensional slices
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*/
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template <class CT>
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template <class CTA>
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inline xaxis_slice_iterator<CT>::xaxis_slice_iterator(CTA&& e, size_type axis)
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: xaxis_slice_iterator(std::forward<CTA>(e), axis, 0, e.data_offset())
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{
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}
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/**
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* Constructs an xaxis_slice_iterator starting at specified index and offset
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*
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* @param e the expression to iterate over
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* @param axis the axis to iterate over taking one dimensional slices
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* @param index the starting index for the iterator
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* @param offset the starting offset for the iterator
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*/
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template <class CT>
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template <class CTA>
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inline xaxis_slice_iterator<CT>::xaxis_slice_iterator(CTA&& e, size_type axis, size_type index, size_type offset)
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: p_expression(get_storage_init<storing_type>(std::forward<CTA>(e)))
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, m_index(index)
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, m_offset(offset)
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, m_axis_stride(static_cast<size_type>(e.strides()[axis]) * (e.shape()[axis] - 1u))
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, m_lower_shape(0)
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, m_upper_shape(0)
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, m_iter_size(0)
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, m_is_target_axis(false)
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, m_sv(strided_view(
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std::forward<CT>(e),
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std::forward<shape_type>({e.shape()[axis]}),
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std::forward<strides_type>({e.strides()[axis]}),
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offset,
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e.layout()
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))
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{
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if (e.layout() == layout_type::row_major)
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{
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m_is_target_axis = axis == e.dimension() - 1;
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m_lower_shape = std::accumulate(
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e.shape().begin() + axis + 1,
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e.shape().end(),
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size_t(1),
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std::multiplies<>()
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);
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m_iter_size = std::accumulate(e.shape().begin() + 1, e.shape().end(), size_t(1), std::multiplies<>());
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}
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else
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{
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m_is_target_axis = axis == 0;
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m_lower_shape = std::accumulate(
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e.shape().begin(),
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e.shape().begin() + axis,
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size_t(1),
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std::multiplies<>()
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);
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m_iter_size = std::accumulate(e.shape().begin(), e.shape().end() - 1, size_t(1), std::multiplies<>());
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}
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m_upper_shape = m_lower_shape + m_axis_stride;
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}
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//@}
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/**
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* @name Increment
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*/
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//@{
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/**
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* Increments the iterator to the next position and returns it.
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*/
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template <class CT>
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inline auto xaxis_slice_iterator<CT>::operator++() -> self_type&
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{
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++m_index;
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++m_offset;
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auto index_compare = (m_offset % m_iter_size);
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if (m_is_target_axis || (m_upper_shape >= index_compare && index_compare >= m_lower_shape))
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{
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m_offset += m_axis_stride;
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}
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m_sv.set_offset(m_offset);
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return *this;
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}
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/**
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* Makes a copy of the iterator, increments it to the next
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* position, and returns the copy.
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*/
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template <class CT>
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inline auto xaxis_slice_iterator<CT>::operator++(int) -> self_type
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{
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self_type tmp(*this);
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++(*this);
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return tmp;
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}
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//@}
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/**
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* @name Reference
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*/
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//@{
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/**
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* Returns the strided view at the current iteration position
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*
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* @return a strided_view
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*/
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template <class CT>
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inline auto xaxis_slice_iterator<CT>::operator*() const -> reference
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{
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return m_sv;
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}
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/**
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* Returns a pointer to the strided view at the current iteration position
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*
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* @return a pointer to a strided_view
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*/
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template <class CT>
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inline auto xaxis_slice_iterator<CT>::operator->() const -> pointer
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{
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return xtl::closure_pointer(operator*());
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}
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//@}
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/*
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* @name Comparisons
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*/
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//@{
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/**
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* Checks equality of the xaxis_slice_iterator and \c rhs.
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*
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* @return true if the iterators are equivalent, false otherwise
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*/
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template <class CT>
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inline bool xaxis_slice_iterator<CT>::equal(const self_type& rhs) const
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{
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return p_expression == rhs.p_expression && m_index == rhs.m_index;
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}
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/**
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* Checks equality of the iterators.
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*
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* @return true if the iterators are equivalent, false otherwise
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*/
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template <class CT>
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inline bool operator==(const xaxis_slice_iterator<CT>& lhs, const xaxis_slice_iterator<CT>& rhs)
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{
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return lhs.equal(rhs);
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}
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/**
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* Checks inequality of the iterators
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* @return true if the iterators are different, true otherwise
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*/
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template <class CT>
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inline bool operator!=(const xaxis_slice_iterator<CT>& lhs, const xaxis_slice_iterator<CT>& rhs)
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{
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return !(lhs == rhs);
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}
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//@}
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/**
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* @name Iterators
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*/
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//@{
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/**
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* Returns an iterator to the first element of the expression for axis 0
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*
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* @param e the expession to iterate over
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* @return an instance of xaxis_slice_iterator
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*/
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template <class E>
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inline auto axis_slice_begin(E&& e)
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{
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using return_type = xaxis_slice_iterator<xtl::closure_type_t<E>>;
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return return_type(std::forward<E>(e), 0);
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}
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/**
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* Returns an iterator to the first element of the expression for the specified axis
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*
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* @param e the expession to iterate over
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* @param axis the axis to iterate over
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* @return an instance of xaxis_slice_iterator
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*/
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template <class E>
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inline auto axis_slice_begin(E&& e, typename std::decay_t<E>::size_type axis)
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{
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using return_type = xaxis_slice_iterator<xtl::closure_type_t<E>>;
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return return_type(std::forward<E>(e), axis, 0, e.data_offset());
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}
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/**
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* Returns an iterator to the element following the last element of
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* the expression for axis 0
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*
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* @param e the expession to iterate over
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* @return an instance of xaxis_slice_iterator
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*/
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template <class E>
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inline auto axis_slice_end(E&& e)
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{
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using return_type = xaxis_slice_iterator<xtl::closure_type_t<E>>;
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return return_type(
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std::forward<E>(e),
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0,
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std::accumulate(e.shape().begin() + 1, e.shape().end(), size_t(1), std::multiplies<>()),
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e.size()
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);
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}
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/**
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* Returns an iterator to the element following the last element of
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* the expression for the specified axis
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*
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* @param e the expression to iterate over
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* @param axis the axis to iterate over
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* @return an instance of xaxis_slice_iterator
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*/
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template <class E>
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inline auto axis_slice_end(E&& e, typename std::decay_t<E>::size_type axis)
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{
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using return_type = xaxis_slice_iterator<xtl::closure_type_t<E>>;
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auto index_sum = std::accumulate(
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e.shape().begin(),
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e.shape().begin() + axis,
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size_t(1),
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std::multiplies<>()
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);
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return return_type(
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std::forward<E>(e),
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axis,
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std::accumulate(e.shape().begin() + axis + 1, e.shape().end(), index_sum, std::multiplies<>()),
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e.size() + axis
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);
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}
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//@}
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}
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#endif
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