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I use a std::set to sort a vector of unordered duplicate values. Every time I find an element in my set, I need to know the position (index) of the element as well. There are a lot of elements (hundreds of thousands) in my set, and using std::distance() gives me abysmal performance.

Is std::distance the only way to go?

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if you are going to sort the vector, then you shouldn't need to use a set. Once you have a sorted vector, just use binary_search on it. I find the std::set to be rather slow. –  Samy Arous May 21 '12 at 1:45
    
Given your approach, why do you need the position? find returns the iterator, and you can move things around using those iterators. See std::swap, for example. –  Chris Betti May 21 '12 at 2:01
    
I'm cleaning a data structure that's a mesh, which uses indices to define polygons. After looking up a given vertex, I need its index in that list as well. –  Pris May 21 '12 at 2:23
    
Are you trying to remove duplicates? If so, then just use std::sort followed by std::unique. Or perhaps use std::set instead of std::vector from the onset, and then you'll always have sorted, unique values. –  jamesdlin May 21 '12 at 2:47
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You can sort the elements in place using the std::sort() algorithm. Then when you find an element in the vector using binary_search() just subtract the result of a call to begin() from the iterator pointing to the element.

Another alternative is to use std::partial_sort_copy() if you don't want to overwrite your original vector. Just sort into another vector and you can do the same thing I described above.

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