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#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?

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Why not use n.rbegin()? –  KennyTM Apr 20 '10 at 19:55
    
for some reason, I don't want to have a reverse_iterator. –  cpx Apr 20 '10 at 19:58

7 Answers 7

up vote 44 down vote accepted

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;
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In places this can be shortened as in newlist.splice(--newlist.end(),oldlist); –  dmckee Dec 8 '11 at 20:02

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();
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24  
back() returns a reference to the last element, not an iterator to the last element; rbegin() returns a reverse iterator, not an iterator. –  James McNellis Apr 20 '10 at 20:00
5  
A reverse iterator is an iterator. Its just not a list::iterator. –  Dennis Zickefoose Apr 20 '10 at 20:24
    
@Dennis: Which is what I meant; sorry if it wasn't clear. –  James McNellis Apr 20 '10 at 20:26
    
I tweaked my answer. –  Remy Lebeau Jun 30 '12 at 22:28
    
somelist.end() - 1 doesn't compile. –  Sebastian Redl Oct 10 at 12:59

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].

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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 ? –  José X. Sep 11 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 –  Eugen Constantin Dinca Sep 22 at 9:47

Take the end() and go one backwards.

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

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4  
This is available in C++0x as well (std::next and std::prev). –  James McNellis Apr 20 '10 at 20:30
list<int>n;
list<int>::reverse_iterator it;
int j;

for(j=1,it=n.rbegin();j<2;j++,it++)
cout<<*it;
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2  
Explaining the code you posted would make your answer even better. –  Alex Nov 21 '12 at 0:13

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