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Imagine you have a bunch of NSArrays. The arrays all contain CGPoints wrapped in NSValues. All of the elements are not unique. So certain elements can appear in multiple arrays. What's the fastest way combine these arrays into a single array such that the resulting array contains just the unique elements?

Currently I'm doing it like this:

  1. Insert each array into an NSSet using setByAddingObjectsFromArray
  2. Fill the result array with the set's contents

Another option is this:

  1. Traverse every array once and insert each value into an NSDictionary (if it's not in there already)
  2. Traverse the dictionary's keys once and insert each into the result array

The traditional runtime analysis says the first option should scale with O(n log n) where n is the number of elements in all the initial arrays (traverse all elements and insert each into a binary search tree or similar in log time). For the second approach the runtime is O(n) since lookup and insertion into the hash table runs in amortized constant time. However after reading a bit about Apple's data structures it seems foolish to assume they behave like traditional data structures.

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2 Answers 2

Since both of these approaches will be somewhere between O(n) and O(n log n) and your n is likely small enough that log n is bounded and small, constant factors are likely to decide which of these is the fastest.

At this point, actually benchmarking with data that looks like your use-case is the best thing to do.

I believe, but am not certain, that the NSSet is implemented with a hash as well.

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NSSet is certainly implemented by using hash, and on uses isEqual on has collisions –  tt.Kilew Dec 5 '12 at 17:36

Actually... I think that time will be almost the same, but, in case of NSDictionary you'll get a bit memory overhead, because in that case you would need to copy keys to that NSDictionary. Both of them NSDictionary and NSSet work the same way:

  1. hash is checked for uniquness
  2. If both items have the same cache, isEqual is getting called

There's no big difference in approaches, you've mentioned.

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