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std::map should be implemented with a binary search tree as I read in the documentation and it sorts them too.

I need to insert rapidly and retrieve rapidly elements. I also need to get the first lowest N elements from time to time.

I was thinking about using a std::map, is it a good choice? If it is, what is the time I would need to retrieve the lowest N elements? O(n*logn)?

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when you say "first lowest N elements", you mean sorted by key or by value? –  Andy Prowl Jan 21 '13 at 14:55
    
What are you doing? The requirements sound somewhat unusual. –  Jan Hudec Jan 21 '13 at 14:56

4 Answers 4

up vote 2 down vote accepted

Given you need both retrieval and n smallest, I would say std::map is reasonable choice. But depending on the exact access pattern std::vector with sorting might be a good choice too.

I am not sure what you mean by retrieve. Time to read k elements is O(k) (provided you do it sequentially using iterator), time to remove them is O(k log n) (n is the total amount of elements; even if you do it sequentially using iterators).

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Time to read k elements is only O(k) if you're reading them sequentially using iterators. The time to read a random element is O(log n) so the k random elements take O(k log n). Of course, in this case they can be read sequentially - but it should be realised this is a special case. –  Jack Aidley Jan 21 '13 at 19:24
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You are right; I'll add a note in the text –  Jan Hudec Jan 22 '13 at 7:43

You can use iterators to rapidly read through the lowest N elements. Going from begin() to the N-1th element will take O(n) time (getting the next element is amortised constant time for a std::map).

I'd note, however, that it is often actually faster to use a sorted std::vector with a binary chop search method to implement what it sounds like you are doing so depending on your exact requirements this might be worth investigating.

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The C++ standard requires that all required iterator operations (including iterator increment) be amortized constant time. Consequently, getting the first N items in a container must take amortized O(N) time.

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I would say yes to both questions.

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