75
#include <list>
using std::list;

int main()
{
    list <int> n;
    n.push_back(1);
    n.push_back(2);
    n.push_back(3);

    list <int>::iterator iter = n.begin();
    std::advance(iter, n.size() - 1); //iter is set to last element
}

is there any other way to have an iter to the last element in list?

1
  • 5
    for some reason, I don't want to have a reverse_iterator.
    – cpx
    Apr 20, 2010 at 19:58

7 Answers 7

117

Yes, you can go one back from the end. (Assuming that you know that the list isn't empty.)

std::list<int>::iterator i = n.end();
--i;
2
  • 1
    In places this can be shortened as in newlist.splice(--newlist.end(),oldlist); Dec 8, 2011 at 20:02
  • Also... std::prev(std::end(list))
    – Adna Kateg
    Oct 2, 2023 at 14:17
89

Either of the following will return a std::list<int>::iterator to the last item in the list:

std::list<int>::iterator iter = n.end();
--iter;

std::list<int>::iterator iter = n.end();
std::advance(iter, -1);

// C++11
std::list<int>::iterator iter = std::next(n.end(), -1);

// C++11
std::list<int>::iterator iter = std::prev(n.end());

The following will return a std::list<int>::reverse_iterator to the last item in the list:

std::list<int>::reverse_iterator iter = std::list::rbegin();
4
  • Will std::list<int>::iterator iter = --n.end(); work as well or the decrement will be done only after the assignment? May 2, 2018 at 11:20
  • 1
    @mbrandalero it should work fine. The result of the decrement will be assigned to the variable May 2, 2018 at 14:45
  • @RemyLebeau That might not always work (i.e. for iterators more generally, not just class-type ones), as iterators are not required to be modifiable lvalues. See Why can't I decrement std::array::end()? for good discussion. So, basically, wrapping it in std::prev() is better style. Sep 22, 2018 at 10:31
  • @mbrandalero If using predecrement is usable for a given iterator (see above comment), the decrement must be done before the assiignment, as that is how the entire world expects prefix operators to work, and any iterator not doing that would be dismally broken. Sep 22, 2018 at 10:36
11

With reverse iterators:

iter = (++n.rbegin()).base()

As a side note: this or Charles Bailey method have constant complexity while std::advance(iter, n.size() - 1); has linear complexity with list [since it has bidirectional iterators].

2
  • Why "++n.rbegin()" ? To me that seems like a reverse iterator to the next to last element. Wouldn't "n.rbegin().base()" (without the "++") be the iterator to the last element ?
    – zentrunix
    Sep 11, 2014 at 12:40
  • @JoséX. base() is not just shorthand for casting an reverse iterator into a forward iterator. Take a look at this response for more info about base: stackoverflow.com/a/16609146/153861 Sep 22, 2014 at 9:47
7

Take the end() and go one backwards.

list <int>::iterator iter = n.end();
cout << *(--iter);
2
  • Why do I have to go one backwards? Is there a dummy end node or something?
    – Tarion
    Jan 4, 2018 at 17:09
  • 1
    @Tarion: n.end() doesn't point at the last element, but right off the end of the list.
    – ratiotile
    Feb 7, 2018 at 2:15
6
std::list<int>::iterator iter = --n.end();
cout << *iter;
1
1

You could write your own functions to obtain a previous (and next) iterator from the given one (which I have used when I've needed "look-behind" and "look-ahead" with a std::list):

template <class Iter>
Iter previous(Iter it)
{
    return --it;
}

And then:

std::list<X>::iterator last = previous(li.end());

BTW, this might also be available in the boost library (next and prior).

1
  • 7
    This is available in C++0x as well (std::next and std::prev). Apr 20, 2010 at 20:30
0
list<int>n;
list<int>::reverse_iterator it;
int j;

for(j=1,it=n.rbegin();j<2;j++,it++)
cout<<*it;
1
  • 3
    Explaining the code you posted would make your answer even better.
    – user1114055
    Nov 21, 2012 at 0:13

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.