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If I define my own comparator for the generic HashSet<T> in System.Collections.Generic, and its runtime is O(1), is the lookup time of the hashset still O(1)?

I would think no just because there doesn't appear to be a way to set the comparator.

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Erm, you don't mean IEqualityComparer<T> then? –  Hans Passant Aug 25 '10 at 1:08
    
Yes, that's what I meant, thanks. –  user420667 Aug 25 '10 at 1:18

2 Answers 2

up vote 3 down vote accepted

The reason that the lookup time of a regular hashset is O(1) is because it uses open addressing to place objects into the array, so that won't change even if you use your own comparator.

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Wait a minute there. Suppose that the default hash generated is based on the object pointer itself, and that my comparer says that two things are equal solely based on whether two objects are shallowly equal (rather than if they point to the same object.) How would the hash work in this case? –  user420667 Aug 25 '10 at 16:38
    
@user: Your comparer implements a GetHashCode which must return the same value for equal items (and should try to return different values for different items). –  configurator Jan 1 '11 at 6:36

In its best case it will have a insertion of amortised O(1) and a lookup of O(1).

In its worse case it will have an insertion of amortised O(n) and a lookup of O(n).

A good comparator will help keep the real case closer to the best case than the worse, by having a good hash method.

A bad comparator will, well be bad. (Write a deliberately bad comparator that returns the same value for every hashcode [valid, but pointless] and you will be able to see this O(n) behaviour).

A good comparator can get unlucky, but for the most part the real cases are close enough to O(1) that we can think of it as O(1) and not be steered to far away.

Edit:

Missed the bit about "there being no way to set the comparator". There is, HashSet has a constructor that takes one.

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Thanks, didn't see that about the constructor. –  user420667 Aug 25 '10 at 1:17
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You could get much worse than O(n) if the execution time for your comparator is of significantly higher order. –  Slartibartfast Aug 25 '10 at 1:26
    
@Slartibartfast not true, as it will still be in the range of O(1) to O(n) as far as the size of the collection goes. From that perspective, the comparator cost is part of the constant effects, even if it might be e.g. O(n) in relation to the contents of the items compared. This isn't a matter of the lookup not being O(1) in terms of the size of the collection, it's a matter of the time complexity of an operation in relation to a particular factor not telling us everything we need to know. –  Jon Hanna Feb 20 '14 at 10:15

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