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When should I choose one over the other. Are there any pointers that you would recommend for using the right STL containers.

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There is no hashset in STL. There will be unordered_set in C++ (hopefully) next year. –  avakar Mar 25 '10 at 18:28
    
Talking about this sgi.com/tech/stl/hash_set.html –  kal Mar 25 '10 at 18:31
    
There is a discussion related to this here: [stackoverflow.com/questions/222658/… Edit: Adam Rosenfield's answer on that question lays out the big-O for each. –  itsmatt Mar 25 '10 at 18:33
    
@mkal: That's not part of the standard STL. hash_set is an extension. –  KennyTM Mar 25 '10 at 18:38

5 Answers 5

up vote 12 down vote accepted

hash_set is an extension that is not part of the C++ standard. Lookups should be O(1) rather than O(log n) for set, so it will be faster in most circumstances.

Another difference will be seen when you iterate through the containers. set will deliver the contents in sorted order, while hash_set will be essentially random (Thanks Lou Franco).

Edit: The C++11 update to the C++ standard introduced unordered_set which should be preferred instead of hash_set. The performance will be similar and is guaranteed by the standard. The "unordered" in the name stresses that iterating it will produce results in no particular order.

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Also, set is ordered. –  Lou Franco Mar 25 '10 at 18:56

stl::set is implemented as a binary search tree. hashset is implemented as a hash table.

The main issue here is that many people use stl::set thinking it is a hash table with look up of O(1), which it isn't, and doesn't have. It really has O(log(n)) for look ups. Other then that read about binary trees vs hash tables to get a better idea of the datastructures.

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Why did this get downvoted? -- a red-black tree is a kind of binary search tree, and the spec doesn't say it has to be red-black -- it just set big-O parameters for the operations. –  Lou Franco Mar 25 '10 at 18:54

Another thing to keep in mind is that with hash_set you have to provide the hash function, whereas a set only requires a comparison function ('<') which is easier to define (and predefined for native types).

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There are hash functions for native types too. –  Lou Franco Mar 25 '10 at 19:09

I don't think anyone has answered the other part of the question yet.

The reason to use hash_set or unordered_set is the usually O(1) lookup time. I say usually because every so often, depending on implementation, a hash may have to be copied to a larger hash array, or a hash bucket may end up containing thousands of entries.

The reason to use a set is if you often need the largest or smallest member of a set. A hash has no order so there is no quick way to find the smallest item. A tree has order, so largest or smallest is very quick. O(log n) for a simple tree, O(1) if it holds pointers to the ends.

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A hash_set would be implemented by a hash table, which has mostly O(1) operations, whereas a set is implemented by a tree of some sort (AVL, red black, etc.) which have O(log n) operations, but are in sorted order.

Edit: I had written that trees are O(n). That's completely wrong.

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O(log n) for trees –  Andrey Mar 25 '10 at 18:36
    
red-black trees are O(n)? –  anon Mar 25 '10 at 18:36
    
Oh jesus, I can't believe I wrote O(n). That's probably the dumbest thing I've done all day. –  Alex Gaynor Mar 26 '10 at 5:07

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