iterator_type base() const; | (until C++17) | |
constexpr iterator_type base() const; | (since C++17) |
Returns the underlying base iterator. That is std::reverse_iterator(it).base() == it.
The base iterator refers to the element that is next (from the std::reverse_iterator::iterator_type perspective) to the element the reverse_iterator is currently pointing to. That is &*(rit.base() - 1) == &*rit.
(none).
The underlying iterator.
May throw implementation-defined exceptions.
#include <iostream>
#include <iterator>
#include <vector>
int main()
{
std::vector<int> v = { 0, 1, 2, 3, 4, 5 };
using RevIt = std::reverse_iterator<std::vector<int>::iterator>;
const auto it = v.begin() + 3;
RevIt r_it{it};
std::cout << "*it == " << *it << '\n'
<< "*r_it == " << *r_it << '\n'
<< "*r_it.base() == " << *r_it.base() << '\n'
<< "*(r_it.base()-1) == " << *(r_it.base() - 1) << '\n';
RevIt r_end{v.begin()};
RevIt r_begin{v.end()};
for (auto it = r_end.base(); it != r_begin.base(); ++it) {
std::cout << *it << ' ';
}
std::cout << '\n';
for (auto it = r_begin; it != r_end; ++it) {
std::cout << *it << ' ';
}
std::cout << '\n';
}Output:
*it == 3 *r_it == 2 *r_it.base() == 3 *(r_it.base()-1) == 2 0 1 2 3 4 5 5 4 3 2 1 0
| accesses the pointed-to element (public member function) |
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