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I have this function:

type CustomSet = Int => Boolean

If I want to make the intersection I do something like:

def intersection(s: CustomSet, t: CustomSet): CustomSet = {
        (x: Int) => contains(s, x) && contains(t, x)
  }

Now, I don't see any way to check if intersection of two sets is empty...

I tried a lot of ways:

- if (intersection(s, t) == CustomSet())

- if (intersection(s, t) == None)

etc but it's not working...

Can you please tell me where I am wrong in this checking?

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CustomSet is itself just a function. Not the most useful structure here as the intersection doesn't return the intersection, but rather returns a new "set" that only "contains" x if both s and t "contained" x. (Function objects are generally not comparable in any meaningful fashion aside from identity.) –  user166390 Oct 1 '12 at 23:39
    
Why not check for intersection(s, t) size? E.g. isEmpty or .size == 0? –  om-nom-nom Oct 1 '12 at 23:44
    
@om-nom-nom Because there is none, and hence the problem with this "set" intersection :) –  user166390 Oct 1 '12 at 23:44
    
@pst oh, I see now –  om-nom-nom Oct 1 '12 at 23:45
4  
The problem can not be solved elegantly. You have to do a brute-force: Check all elements of a given range (maybe from -100 to 100) if they, applied to contains, evaluate to false. If yes, the set is probably empty. –  sschaef Oct 1 '12 at 23:50
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1 Answer

Just putting all the comments together:

The result of intersection is just a function. You can compare two functions for referential equality, i.e. if they are one and the same function.

There is no way to test if two functions return the same result (and have the same side effects) for all possible parameters (and system states), so all you can do is define a range of input parameters you care about and compare the results of two functions with all the results for all the interesting input parameters.

So in your case you could do something like

(-1000 to 1000).forall(!intersection(s,t)(_))

which would test if all the numbers from -1000 to 1000 are Not in the intersection of s and t

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