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I'm trying to write a function in Haskell that counts the elements in a list satisfying a predicate and returns True if the number exceeds some threshold. I have an implementation that looks like this:

hitsThreshold :: Int -> (a -> Bool) -> [a] -> Bool
hitsThreshold threshold test strs =
  (length $ filter test strs) >= threshold

The problem is, I want this to evaluate lazily so that it will terminate as soon as the length reaches the threshold. For example, I should be able to pass in an infinite list and it should terminate in finite time (assuming the threshold is reached eventually). Is there a simple way to do this?

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4  
Use takeWhile instead of filter. I am still too bad at Haskell to explain that properly, but it should work. Or actually just take, because it gets first n elements. –  Bartek Banachewicz Dec 16 '13 at 22:08
1  
it might be helpful to look at how length, take, and filter are defined and think about how they compose under lazy evaluation –  jberryman Dec 16 '13 at 22:26
1  
IOW hitsThreshold threshold test strs = (length $ take threshold $ filter test strs) == threshold. –  Will Ness Dec 16 '13 at 23:36

1 Answer 1

up vote 10 down vote accepted

Here is an example of what you want

length $ take 10 $ filter even [1..]

[1..] is infinite, so if this weren't lazy, the program would hang.

You are pipeing [1..] through a filter even, then capping the number at 10.... Then you do something with that list. Instead of length, you could check if it reached the threshhold by using (>= 10) $ length).

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