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Have searched the net a lot, but couldn't find the answer to the issue.

I am inserting a value to an std::list using its reverse_iterator. While the insertion occurs at the appropriate position as expected, what I noticed is that the value of the original reverse_iterator used for insertion changes. Also the value of a completely unrelated reverse_iterator too changes. I have been able to reproduce this in a simple example

#include <iostream>
#include <list>
#include <string>

int main()
{
    // Creating a list of values 1, 2, 4, 5
    std::list<int> myList;
    myList.push_back(1);
    myList.push_back(2);
    myList.push_back(4);
    myList.push_back(5);

    // Changing it to 1, 2, 3, 4, 5 by inserting 3
    std::list<int>::reverse_iterator revIter = myList.rbegin();
    while(2 != *revIter)
    {
        std::cout << *revIter << "\t";
        ++revIter;
    }

    std::cout << "\n" << "Reverse iterator now points to " << *revIter;
    // Creating a copy of the reverse Iter before inserting.
    std::list<int>::reverse_iterator newRevIter = revIter;
    myList.insert(revIter.base(), 3);

    // Checking the values of revIter and newRevIter 
    std::cout << "\n" << "Reverse Iterator now points to " << *revIter; // UNEXPECTED RESULT HERE
    std::cout << "\n" << "New Reverse Iterator now points to " << *newRevIter; // UNEXPRECTED RESULT HERE

    std::cout << "\n" << "Printing final list:" << "\n";
    for(std::list<int>::iterator iter = myList.begin(); myList.end() != iter; ++iter)
    {
        std::cout << *iter << "\t"; // Results are fine
    }

    return 0;
}

RESULT

5    4
Reverse iterator now points to 2
Reverse iterator now points to 3
New Reverse iterator now points to 3
Printing final list:
1    2    3    4    5

Is this expected behaviour. If so how can reverse iterator be used to insert items to a list (Or is it useless in this regard)?

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Just a note: "copying" the iterator is quite like copying a pointer. (Note that you "dereference" them quite the same way). So it's perfectly normal that revIter and newRevIter yield the same value when you dereference them. –  JBL Nov 19 '13 at 14:17
    
Not sure what the standard says, but this, using the return value of insert, should work, revIter = std::list<int>::reverse_iterator(myList.insert(revIter.base(), 3)); –  john Nov 19 '13 at 14:20
    
@JBL. Yup, I know that. I just wanted to make sure that I didn't make any mistake. That the value pointed by the reverse iterator is indeed changing. –  john_zac Nov 19 '13 at 14:29
    
@john. Thanks, that seems to be working. Can you explain further on why it works? –  john_zac Nov 19 '13 at 14:32
    
@john_zac David's answer below explains how reverse iterators are implemented. list::insert returns the newly inserted node, by creating a reverse iterator from that you actually get a reverse iterator that refers to the node before the newly inserted node. –  john Nov 19 '13 at 14:48
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2 Answers

up vote 4 down vote accepted

I would avoid using reverse iterators (in general, and in particular for anything other than a sequential transversal). Forward and reverse iterators work differently, in the case of a forward iterator into a list, the iterator tracks the node that you access through operator*, but in the reverse case the iterator tracks the next element in the list. The act of dereferencing a reverse iterator obtains the predecessor of the node referred by the iterator and extracts the value from that. Graphically (f is a forward iterator, r is a reverse iterator)

  f
1 2 4
    r

Both the forward iterator f and the reverse iterator r will yield 2 when dereferenced, but the node they track is different. When you insert using r you insert between 2 and 4, but the underlying iterator is left pointing to the node holding the 4:

  f
1 2 3 4
      r

Now if you dereference r, the same process as above applies. The predecessor of the current node is obtained, and the value printed, except that now the predecessor of 4 is 3 and that is what you get.

Is this expected behaviour. If so how can reverse iterator be used to insert items to a list (Or is it useless in this regard)?

Yes, this is expected behavior. How can a reverse iterator be used to insert items to a list? Understanding how it works.

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+1 Thanks, It makes sense now. I didn't analyse it as deeply as that initially. It also explains john's comment. –  john_zac Nov 19 '13 at 14:51
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The invariant after insertion is the std::reverse_iterator<>::base(), not the std::reverse_iterator<> itself. But, base() does target the previous elements compared to reverse_iterator:

http://en.cppreference.com/w/cpp/iterator/reverse_iterator

What's bother me a bit is that when I had std::distance to the begin() (or rend().base() ):

  std::cout << "\n" 
        << "Reverse Iterator now points to " 
        << *revIter << "-" << *(revIter.base())<< "-" 
        << std::distance(revIter.base(), myList.rend().base()); 

I have:

Reverse iterator now points to 2-4-3

Reverse Iterator now points to 3-4-3

Or I expect the second one to be "3-4-4" as the element is inserted prior to the base()...

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