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it's very basic, but i could not find a similar question here. i am trying to iterate the same sorted STL list from different directions using list. i know i can compare an iterator to the list.begin() and list.end(). so why this doesn't work:

        list<family>::iterator itLargeFamily = families.begin();//starts from the biggest families
        list<family>::iterator itSmallFamily = families.end();  //starts from the smallest families
        while (itSmallFamily > itLargeFamily)
        {
            // stuff...
            itSmallFamily--;
            itLargeFamily++;
        }

error is of course "no operator > matches these operands". 100% chance i'm missing something basic.

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And what are you trying to achieve with this kind of comparison? –  Alexey Frunze Apr 8 '13 at 9:56
    
moving through the list with two independent iterators. the itSmallFamily-- and itLargeFamily++ above is for simplicity of the example. i would need to advance/decrease them independent of each other. –  PIXP Apr 8 '13 at 10:12
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2 Answers

up vote 0 down vote accepted

From the comments and the answer of sftrabbit you can see that relational operators are only defined for random access iterators, and std::list has only bidirectional iterators. So there are several solutions for your problem:

  1. Use std::vector or std::array. They provide random access iterators, have better performance for smaller sizes, and depending of how you fill/use them for larger sizes as well, and they have better memory footprint. This is the preferred solution, I'd call it the "default" solution. Use other containers only if there is a very good, measurable reason (e.g. a profiler tells you that using that container is a performance bottleneck).
  2. Since you know the size of the list, you can use a counter for your iterations:

    for (size_t i = 0, count = families.size()/2; 
         i < count; 
         ++i, --itSmallFamily, ++itLargeFamily)
    { /* do stuff */ }
    
  3. Since your list is sorted, you can compare the elements the iterators point to instead of the iterators themselves.

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thank you. for 3. i'm using a fairly complex "families.sort(compare_size)" code (not really complex, but enough to write it someplace else the iterating code. –  PIXP Apr 8 '13 at 10:16
    
@PIXP therefore it's only point 3 in the list ;-) If the comparison is expensive, that is not an option. –  Arne Mertz Apr 8 '13 at 11:45
    
not expensive with runtime, more like cumbersome. and the comment was for future readers... –  PIXP Apr 8 '13 at 13:48
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Only random access iterators are ordered. std::list iterators are only bidirectional iterators, so they do not support operator< or operator>.

Instead, you could do your comparison with !=.

while (itSmallFamily != itLargeFamily)

You'll have to make sure that the iterators don't jump over each other for this to work though. That is, if itSmallFamily is only one increment away from itLargeFamily, you will simply swap them over and they'll never have been equal to each other.

You could instead use std::vector, whose iterators are random access iterators. In addition, std::array and std::deque are also support random access.

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thanks for the quick reply. so i guess it was nothing i missed, it's just lack of basic knowledge on my side. are there any iterators (from other containers maybe) that can be compared across the container like i have described? –  PIXP Apr 8 '13 at 9:58
1  
This will only work if (families.size() % 2) == 0 since else those iterators will never be the same. –  Arne Mertz Apr 8 '13 at 9:58
1  
@PIXP std::vector has random access iterators. –  Joseph Mansfield Apr 8 '13 at 10:00
    
@sftrabbit is that a different definition of "ordered" than this is? –  Drew Dormann Apr 8 '13 at 10:00
    
@PIXP: std::vector is almost always a better choice than std::list. std::list is good if you're doing many inserts at arbitrary locations and the number of elements is significant (hundreds, maybe even thousands). –  Thomas Apr 8 '13 at 10:01
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