File: C:/Users/fred/anaconda3/Library/include/LIEF/iterators.hpp
/* Copyright 2017 - 2022 R. Thomas
* Copyright 2017 - 2022 Quarkslab
* Copyright 2017 - 2021, NVIDIA CORPORATION. All rights reserved.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
#ifndef LIEF_ITERATORS_H_
#define LIEF_ITERATORS_H_
#include <iostream>
#include <cmath>
#include <cstddef>
#include <cassert>
#include <iterator>
#include <functional>
#include <algorithm>
#include <type_traits>
#include <vector>
#include "LIEF/exception.hpp"
namespace LIEF {
template<class T>
using decay_t = typename std::decay<T>::type;
template<class T>
using add_const_t = typename std::add_const<T>::type;
template<class T>
using remove_const_t = typename std::remove_const<T>::type;
template< class T >
using add_lvalue_reference_t = typename std::add_lvalue_reference<T>::type;
//! Iterator which returns reference on container's values
template<class T, typename U = typename decay_t<T>::value_type,
class ITERATOR_T = typename decay_t<T>::iterator>
class ref_iterator : public std::iterator<
std::bidirectional_iterator_tag,
decay_t<U>,
ptrdiff_t,
typename std::remove_pointer<U>::type*,
typename std::remove_pointer<U>::type&> {
public:
using container_type = T; // e.g. std::vector<Section*>&
using DT_VAL = U; // e.g. Section*
using DT = decay_t<T>; // e.g. std::vector<Section>
using ref_t = typename ref_iterator::reference;
using pointer_t = typename ref_iterator::pointer;
ref_iterator(T container) :
container_{std::forward<T>(container)},
distance_{0}
{
it_ = std::begin(container_);
}
ref_iterator(const ref_iterator& copy) :
container_{copy.container_},
it_{std::begin(container_)},
distance_{copy.distance_}
{
std::advance(it_, distance_);
}
ref_iterator operator=(ref_iterator other) {
swap(other);
return *this;
}
void swap(ref_iterator& other) {
std::swap(const_cast<add_lvalue_reference_t<remove_const_t<DT>>>(container_),
const_cast<add_lvalue_reference_t<remove_const_t<DT>>>(other.container_));
std::swap(it_, other.it_);
std::swap(distance_, other.distance_);
}
ref_iterator& operator++() {
it_ = std::next(it_);
distance_++;
return *this;
}
ref_iterator operator++(int) {
ref_iterator retval = *this;
++(*this);
return retval;
}
ref_iterator& operator--() {
if (it_ != std::begin(container_)) {
it_ = std::prev(it_);
distance_--;
}
return *this;
}
ref_iterator operator--(int) {
ref_iterator retval = *this;
--(*this);
return retval;
}
ref_iterator& operator+=(const typename ref_iterator::difference_type& movement) {
std::advance(it_, movement);
distance_ += movement;
return *this;
}
ref_iterator& operator-=(const typename ref_iterator::difference_type& movement) {
return (*this) += -movement;
}
typename std::enable_if<!std::is_const<ref_t>::value, remove_const_t<ref_t>>::type
operator[](size_t n) {
return const_cast<remove_const_t<ref_t>>(static_cast<const ref_iterator*>(this)->operator[](n));
}
add_const_t<ref_t> operator[](size_t n) const {
assert(n < size() && "integrity error: out of bound");
ref_iterator* no_const_this = const_cast<ref_iterator*>(this);
typename ref_iterator::difference_type saved_dist = std::distance(std::begin(no_const_this->container_), no_const_this->it_);
no_const_this->it_ = std::begin(no_const_this->container_);
std::advance(no_const_this->it_, n);
auto&& v = const_cast<add_const_t<ref_t>>(no_const_this->operator*());
no_const_this->it_ = std::begin(no_const_this->container_);
std::advance(no_const_this->it_, saved_dist);
return v;
}
ref_iterator operator+(typename ref_iterator::difference_type n) const {
ref_iterator tmp = *this;
return tmp += n;
}
ref_iterator operator-(typename ref_iterator::difference_type n) const {
ref_iterator tmp = *this;
return tmp -= n;
}
typename ref_iterator::difference_type operator-(const ref_iterator& rhs) const {
return distance_ - rhs.distance_;
}
bool operator<(const ref_iterator& rhs) const {
return (rhs - *this) > 0;
}
bool operator>(const ref_iterator& rhs) const {
return rhs < *this;
}
bool operator>=(const ref_iterator& rhs) const {
return !(*this < rhs);
}
bool operator<=(const ref_iterator& rhs) const {
return !(*this > rhs);
}
ref_iterator begin() const {
return container_;
}
ref_iterator cbegin() const {
return begin();
}
ref_iterator end() const {
ref_iterator it = ref_iterator{container_};
it.it_ = std::end(it.container_);
it.distance_ = it.size();
return it;
}
ref_iterator cend() const {
return end();
}
bool operator==(const ref_iterator& other) const {
return (size() == other.size() && distance_ == other.distance_);
}
bool operator!=(const ref_iterator& other) const {
return !(*this == other);
}
size_t size() const {
return container_.size();
}
bool empty() const {
return container_.empty();
}
typename std::enable_if<!std::is_const<ref_t>::value, remove_const_t<ref_t>>::type
operator*() {
return const_cast<remove_const_t<ref_t>>(static_cast<const ref_iterator*>(this)->operator*());
}
template<typename V = DT_VAL>
typename std::enable_if<std::is_pointer<V>::value, add_const_t<ref_t>>::type
operator*() const {
assert(*it_ && "integrity error: nullptr");
return const_cast<add_const_t<ref_t>>(**it_);
}
template<typename V = DT_VAL>
typename std::enable_if<!std::is_pointer<V>::value, add_const_t<ref_t>>::type
operator*() const {
return const_cast<add_const_t<ref_t>>(*(it_));
}
typename std::enable_if<!std::is_const<pointer_t>::value, pointer_t>::type
operator->() {
return const_cast<remove_const_t<pointer_t>>(static_cast<const ref_iterator*>(this)->operator->());
}
add_const_t<pointer_t> operator->() const {
return const_cast<add_const_t<pointer_t>>(&(operator*()));
}
protected:
T container_;
ITERATOR_T it_;
typename ref_iterator::difference_type distance_;
};
//! Iterator which return const ref on container's values
template<class T, typename U = typename decay_t<T>::value_type, class CT = typename std::add_const<T>::type>
using const_ref_iterator = ref_iterator<CT, U, typename decay_t<CT>::const_iterator>;
//! Iterator which return a ref on container's values given predicates
template<class T, typename U = typename decay_t<T>::value_type,
class ITERATOR_T = typename decay_t<T>::iterator>
class filter_iterator : public std::iterator<
std::forward_iterator_tag,
decay_t<U>,
ptrdiff_t,
typename std::remove_pointer<U>::type*,
typename std::remove_pointer<U>::type&> {
public:
using container_type = T;
using DT_VAL = U;
using DT = decay_t<T>;
using ref_t = typename filter_iterator::reference;
using pointer_t = typename filter_iterator::pointer;
using filter_t = std::function<bool (const typename DT::value_type&)>;
filter_iterator(T container, filter_t filter) :
size_c_{0},
container_{std::forward<T>(container)},
filters_{},
distance_{0}
{
it_ = std::begin(container_);
filters_.push_back(filter),
it_ = std::begin(container_);
if (it_ != std::end(container_)) {
if (!std::all_of(std::begin(filters_), std::end(filters_), [this] (const filter_t& f) {return f(*it_);})) {
next();
}
}
}
filter_iterator(T container, const std::vector<filter_t>& filters) :
size_c_{0},
container_{std::forward<T>(container)},
filters_{filters},
distance_{0}
{
it_ = std::begin(container_);
if (it_ != std::end(container_)) {
if (!std::all_of(std::begin(filters_), std::end(filters_), [this] (const filter_t& f) {return f(*it_);})) {
next();
}
}
}
filter_iterator(T container) :
size_c_{0},
container_{std::forward<T>(container)},
filters_{},
distance_{0}
{
it_ = std::begin(container_);
}
filter_iterator(const filter_iterator& copy) :
size_c_{0},
container_{copy.container_},
it_{std::begin(container_)},
filters_{copy.filters_},
distance_{copy.distance_}
{
std::advance(it_, distance_);
}
filter_iterator operator=(filter_iterator other) {
swap(other);
return *this;
}
void swap(filter_iterator& other) {
std::swap(const_cast<remove_const_t<DT>&>(container_), const_cast<remove_const_t<DT>&>(other.container_));
std::swap(it_, other.it_);
std::swap(filters_, other.filters_);
std::swap(size_c_, other.size_c_);
std::swap(distance_, other.distance_);
}
filter_iterator& def(filter_t func) {
filters_.push_back(func);
size_c_ = 0;
return *this;
}
filter_iterator& operator++() {
next();
return *this;
}
filter_iterator operator++(int) {
filter_iterator retval = *this;
++(*this);
return retval;
}
filter_iterator begin() const {
return {container_, filters_};
}
filter_iterator cbegin() const {
return begin();
}
filter_iterator end() const {
// we don't need filter for the end iterator
filter_iterator it_end{container_};
it_end.it_ = it_end.container_.end();
it_end.distance_ = it_end.container_.size();
return it_end;
}
filter_iterator cend() const {
return end();
}
typename std::enable_if<!std::is_const<ref_t>::value, remove_const_t<ref_t>>::type
operator*() {
return const_cast<remove_const_t<ref_t>>(static_cast<const filter_iterator*>(this)->operator*());
}
template<typename V = DT_VAL>
typename std::enable_if<std::is_pointer<V>::value, add_const_t<ref_t>>::type
operator*() const {
assert(*it_ && "integrity error: nullptr");
return const_cast<add_const_t<ref_t>>(**it_);
}
template<typename V = DT_VAL>
typename std::enable_if<!std::is_pointer<V>::value, add_const_t<ref_t>>::type
operator*() const {
return const_cast<add_const_t<ref_t>>(*(it_));
}
typename std::enable_if<!std::is_const<ref_t>::value, remove_const_t<ref_t>>::type
operator[](size_t n) {
return const_cast<remove_const_t<ref_t>>(static_cast<const filter_iterator*>(this)->operator[](n));
}
add_const_t<ref_t> operator[](size_t n) const {
assert(n < size() && "integrity error: out of bound");
auto it = begin();
std::advance(it, n);
return const_cast<add_const_t<ref_t>>(*it);
}
typename std::enable_if<!std::is_const<pointer_t>::value, pointer_t>::type
operator->() {
return const_cast<remove_const_t<pointer_t>>(static_cast<const filter_iterator*>(this)->operator->());
}
add_const_t<pointer_t> operator->() const {
return const_cast<add_const_t<pointer_t>>(&(operator*()));
}
size_t size() const {
if (filters_.size() == 0) {
return container_.size();
}
if (size_c_ > 0) {
return size_c_;
}
filter_iterator it = begin();
size_t size = 0;
auto end_iter = std::end(it);
for (; it != end_iter; ++it) ++size;
size_c_ = size;
return size_c_;
}
bool empty() const {
return size() == 0;
}
bool operator==(const filter_iterator& other) const {
return (container_.size() == other.container_.size() && distance_ == other.distance_);
}
bool operator!=(const filter_iterator& other) const {
return !(*this == other);
}
protected:
void next() {
if (it_ == std::end(container_)) {
distance_ = container_.size();
return;
}
do {
it_ = std::next(it_);
distance_++;
} while(it_ != std::end(container_) &&
!std::all_of(std::begin(filters_), std::end(filters_),
[this] (const filter_t& f) { return f(*it_); }));
}
mutable size_t size_c_;
T container_;
ITERATOR_T it_;
std::vector<filter_t> filters_;
typename filter_iterator::difference_type distance_;
};
//! Iterator which return a const ref on container's values given predicates
template<class T, typename U = typename decay_t<T>::value_type,
class CT = typename std::add_const<T>::type>
using const_filter_iterator = filter_iterator<CT, U, typename decay_t<CT>::const_iterator>;
}
#endif