2019-09-12 14:23:21 +02:00
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/*
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* This program is free software; you can redistribute it and/or
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* modify it under the terms of the GNU General Public License
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* as published by the Free Software Foundation; either version 2
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* of the License, or (at your option) any later version.
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*
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* This program is distributed in the hope that it will be useful,
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* but WITHOUT ANY WARRANTY; without even the implied warranty of
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* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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* GNU General Public License for more details.
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*
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* You should have received a copy of the GNU General Public License
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* along with this program; if not, write to the Free Software Foundation,
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* Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
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*/
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2019-09-13 21:12:26 +10:00
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#ifndef __BLI_ARRAY_REF_H__
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#define __BLI_ARRAY_REF_H__
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2019-09-12 14:23:21 +02:00
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/** \file
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* \ingroup bli
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*
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* These classes offer a convenient way to work with continuous chunks of memory of a certain type.
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2019-09-19 13:18:52 +10:00
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* We differentiate #ArrayRef and #MutableArrayRef. The elements in the former are const while the
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2019-09-12 14:23:21 +02:00
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* elements in the other are not.
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*
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* Passing array references as parameters has multiple benefits:
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* - Less templates are used because the function does not have to work with different
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* container types.
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2019-09-19 13:18:52 +10:00
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* - It encourages an Struct-of-Arrays data layout which is often beneficial when
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2019-09-12 14:23:21 +02:00
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* writing high performance code. Also it makes it easier to reuse code.
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* - Array references offer convenient ways of slicing and other operations.
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*
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2019-09-19 13:18:52 +10:00
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* The instances of #ArrayRef and #MutableArrayRef are very small and should be passed by value.
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2019-09-12 14:23:21 +02:00
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* Since array references do not own any memory, it is generally not save to store them.
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*/
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#include <vector>
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#include <array>
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#include <algorithm>
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#include <iostream>
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#include <string>
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#include "BLI_utildefines.h"
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#include "BLI_memory_utils_cxx.h"
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#include "BLI_index_range.h"
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namespace BLI {
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/**
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* References an array of data. The elements in the array should not be changed.
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*/
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template<typename T> class ArrayRef {
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private:
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const T *m_start = nullptr;
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uint m_size = 0;
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public:
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/**
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* Create a reference to an empty array.
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* The pointer is allowed to be nullptr.
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*/
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ArrayRef() = default;
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ArrayRef(const T *start, uint size) : m_start(start), m_size(size)
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{
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}
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ArrayRef(const std::initializer_list<T> &list) : ArrayRef(list.begin(), list.size())
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{
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}
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ArrayRef(const std::vector<T> &vector) : ArrayRef(vector.data(), vector.size())
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{
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}
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template<std::size_t N> ArrayRef(const std::array<T, N> &array) : ArrayRef(array.data(), N)
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{
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}
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/**
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* Return a continuous part of the array.
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* Asserts that the slice stays within the array.
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*/
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ArrayRef slice(uint start, uint size) const
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{
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BLI_assert(start + size <= this->size() || size == 0);
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return ArrayRef(m_start + start, size);
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}
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ArrayRef slice(IndexRange range) const
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{
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return this->slice(range.start(), range.size());
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}
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/**
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* Return a new ArrayRef with n elements removed from the beginning.
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* Asserts that the array contains enough elements.
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*/
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ArrayRef drop_front(uint n = 1) const
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{
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BLI_assert(n <= this->size());
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return this->slice(n, this->size() - n);
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}
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/**
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* Return a new ArrayRef with n elements removed from the beginning.
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* Asserts that the array contains enough elements.
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*/
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ArrayRef drop_back(uint n = 1) const
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{
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BLI_assert(n <= this->size());
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return this->slice(0, this->size() - n);
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}
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/**
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* Return a new ArrayRef that only contains the first n elements.
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* Asserts that the array contains enough elements.
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*/
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ArrayRef take_front(uint n) const
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{
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BLI_assert(n <= this->size());
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return this->slice(0, n);
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}
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/**
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* Return a new ArrayRef that only contains the last n elements.
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* Asserts that the array contains enough elements.
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*/
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ArrayRef take_back(uint n) const
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{
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BLI_assert(n <= this->size());
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return this->slice(this->size() - n, n);
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}
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/**
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* Copy the values in this array to another array.
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*/
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void copy_to(T *ptr) const
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{
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BLI::copy_n(m_start, m_size, ptr);
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}
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const T *begin() const
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{
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return m_start;
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}
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const T *end() const
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{
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return m_start + m_size;
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}
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/**
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* Access an element in the array.
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* Asserts that the index is in the bounds of the array.
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*/
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const T &operator[](uint index) const
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{
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BLI_assert(index < m_size);
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return m_start[index];
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}
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/**
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* Return the number of elements in the referenced array.
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*/
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uint size() const
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{
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return m_size;
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}
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/**
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* Return the number of bytes referenced by this ArrayRef.
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*/
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uint byte_size() const
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{
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return sizeof(T) * m_size;
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}
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/**
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* Does a linear search to see of the value is in the array.
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* Return true if it is, otherwise false.
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*/
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bool contains(const T &value) const
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{
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for (const T &element : *this) {
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if (element == value) {
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return true;
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}
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}
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return false;
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}
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/**
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* Does a constant time check to see if the pointer is within the referenced array.
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* Return true if it is, otherwise false.
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*/
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bool contains_ptr(const T *ptr) const
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{
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return (this->begin() <= ptr) && (ptr < this->end());
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}
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/**
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* Does a linear search to count how often the value is in the array.
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2019-09-19 13:18:52 +10:00
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* Returns the number of occurrences.
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2019-09-12 14:23:21 +02:00
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*/
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uint count(const T &value) const
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{
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uint counter = 0;
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for (const T &element : *this) {
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if (element == value) {
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counter++;
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}
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}
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return counter;
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}
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/**
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* Return a reference to the first element in the array.
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* Asserts that the array is not empty.
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*/
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const T &first() const
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{
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BLI_assert(m_size > 0);
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return m_start[0];
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}
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/**
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2019-09-19 13:18:52 +10:00
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* Return a reference to the last element in the array.
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2019-09-12 14:23:21 +02:00
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* Asserts that the array is not empty.
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*/
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const T &last() const
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{
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BLI_assert(m_size > 0);
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return m_start[m_size - 1];
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}
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/**
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* Get element at the given index. If the index is out of range, return the fallback value.
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*/
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T get(uint index, const T &fallback) const
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{
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if (index < m_size) {
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return m_start[index];
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}
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return fallback;
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}
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/**
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* Get a new array ref to the same underlying memory buffer. No conversions are done.
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* Asserts when the sizes of the types don't match.
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*/
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template<typename NewT> ArrayRef<NewT> cast() const
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{
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/* Can be adjusted to allow different type sizes when necessary. */
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BLI_STATIC_ASSERT(sizeof(T) == sizeof(NewT), "");
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return ArrayRef<NewT>((NewT *)m_start, m_size);
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}
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/**
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* A debug utility to print the content of the array ref. Every element will be printed on a
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* separate line using the given callback.
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*/
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template<typename PrintLineF> void print_as_lines(std::string name, PrintLineF print_line) const
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{
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std::cout << "ArrayRef: " << name << " \tSize:" << m_size << '\n';
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for (const T &value : *this) {
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std::cout << " ";
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print_line(value);
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std::cout << '\n';
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}
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}
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};
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/**
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* Mostly the same as ArrayRef, except that one can change the array elements via this reference.
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*/
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template<typename T> class MutableArrayRef {
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private:
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T *m_start;
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uint m_size;
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public:
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MutableArrayRef() = default;
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MutableArrayRef(T *start, uint size) : m_start(start), m_size(size)
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{
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}
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MutableArrayRef(std::initializer_list<T> &list) : MutableArrayRef(list.begin(), list.size())
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{
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}
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MutableArrayRef(std::vector<T> &vector) : MutableArrayRef(vector.data(), vector.size())
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{
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}
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template<std::size_t N>
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MutableArrayRef(std::array<T, N> &array) : MutableArrayRef(array.data(), N)
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{
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}
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operator ArrayRef<T>()
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{
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return ArrayRef<T>(m_start, m_size);
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}
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/**
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* Get the number of elements in the array.
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*/
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uint size() const
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{
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return m_size;
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}
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/**
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* Replace all elements in the referenced array with the given value.
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*/
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void fill(const T &element)
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{
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std::fill_n(m_start, m_size, element);
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}
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/**
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* Replace a subset of all elements with the given value.
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*/
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void fill_indices(ArrayRef<uint> indices, const T &element)
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{
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for (uint i : indices) {
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m_start[i] = element;
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}
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}
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/**
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* Copy the values from another array into the references array.
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*/
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void copy_from(const T *ptr)
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{
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BLI::copy_n(ptr, m_size, m_start);
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}
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void copy_from(ArrayRef<T> other)
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{
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BLI_assert(this->size() == other.size());
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this->copy_from(other.begin());
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}
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T *begin() const
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{
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return m_start;
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}
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T *end() const
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{
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return m_start + m_size;
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}
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T &operator[](uint index) const
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{
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BLI_assert(index < this->size());
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return m_start[index];
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}
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/**
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* Return a continuous part of the array.
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* Asserts that the slice stays in the array bounds.
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2019-09-12 14:23:21 +02:00
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*/
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MutableArrayRef slice(uint start, uint length) const
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{
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BLI_assert(start + length <= this->size());
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return MutableArrayRef(m_start + start, length);
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}
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/**
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* Return a new MutableArrayRef with n elements removed from the beginning.
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*/
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MutableArrayRef drop_front(uint n = 1) const
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{
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BLI_assert(n <= this->size());
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return this->slice(n, this->size() - n);
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}
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/**
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* Return a new MutableArrayRef with n elements removed from the beginning.
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*/
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MutableArrayRef drop_back(uint n = 1) const
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{
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BLI_assert(n <= this->size());
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return this->slice(0, this->size() - n);
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}
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/**
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* Return a new MutableArrayRef that only contains the first n elements.
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*/
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MutableArrayRef take_front(uint n) const
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{
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BLI_assert(n <= this->size());
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return this->slice(0, n);
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}
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/**
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* Return a new MutableArrayRef that only contains the last n elements.
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*/
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MutableArrayRef take_back(uint n) const
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|
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{
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|
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BLI_assert(n <= this->size());
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return this->slice(this->size() - n, n);
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|
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}
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ArrayRef<T> as_ref() const
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|
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|
{
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|
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|
return ArrayRef<T>(m_start, m_size);
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|
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|
}
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};
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/**
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|
* Shorthand to make use of automatic template parameter deduction.
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|
|
|
*/
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|
template<typename T> ArrayRef<T> ref_c_array(const T *array, uint size)
|
|
|
|
{
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|
|
return ArrayRef<T>(array, size);
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}
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} /* namespace BLI */
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2019-09-13 21:12:26 +10:00
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#endif /* __BLI_ARRAY_REF_H__ */
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