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if I have 4 boolean conditions, and I want to say if at least 3 of these are true, then do __, is this possible to implement in Haskell?

Or would I have to go through each permutation? (ie, 1.True, 2.True, 3.True, 4.False and 1.False, 2.True, 3.True, 4.True. etc)

Thanks!

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7 Answers 7

Each permutation? Of course not.. you can count the number of conditions which are true.

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1  
Yeah, when you get to 3 you can stop counting. –  Robert Harvey Oct 8 '12 at 0:54
requireAtLeast :: Int -> [Bool] -> Bool
requireAtLeast n = (>= n) . length . filter id

If you prefer extreme pointful or pointless forms, these are them, respectively:

requireAtLeast threshold predicates = length (filter (\predicate -> predicate) predicates) >= threshold

requireAtLeast = (. length . filter id) . (<=)
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2  
Love the use of filter id. (filter (\predicate -> predicate) predicates) made me chuckle. –  AndrewC Oct 8 '12 at 2:08
atLeast3 :: Bool -> Bool -> Bool -> Bool -> Bool
atLeast3 b1 b2 b3 b4 = sum (map fromEnum [b1, b2, b3, b4]) >= 3
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2  
Maybe not a problem in this case, but what if the list [b1,b2...bn] is very large, is there a lazy way of comparing that doesn't need to go through the whole list? –  Magnus Kronqvist Oct 8 '12 at 7:52
1  
@MagnusKronqvist, yes, see bisserlis, augustss or solrize's answer. –  dbaupp Oct 8 '12 at 8:30

It's not the most beautiful way, but you might find

atLeast :: Int -> [Bool] -> Bool
atLeast n bools = length (filter (==True) bools) >= n

easiest to understand. filter only keeps the things from your list that satisfy the rule you give it. In this case, the rule is that the answer has to be True. Next, length counts how many are left.

(A rule is a function a -> Bool where a is the type of element in your list).

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1  
Or, filter id bools. –  augustss Oct 8 '12 at 6:34
1  
Yes, like I say, not the most beautiful way, but perhaps easy to understand. I already upvoted Ptharien's Flame for that very point; please consider doing so too. –  AndrewC Oct 8 '12 at 6:40
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This is actually the only place where I find writing ==True defensible, so I won't argue with you. –  augustss Oct 8 '12 at 6:44

This solution differs from the others provided so far in that it short circuits (ie, stops after finding n Bools). So it can operate on some infinite lists (only those that would eventually evaluate to True), and won't necessarily force the evaluation of every element in the list (due to laziness).

atLeast :: Int -> [Bool] -> Bool
atLeast 0 _          = True
atLeast _ []         = False
atLeast n (True:bs)  = atLeast (n - 1) bs
atLeast n (False:bs) = atLeast n bs
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If you want it to stop examining the list when you have found N numbers you can count with lazy natural numbers.

import Data.List
import Data.Number.Natural

atLeast :: Int -> [Bool] -> Bool
atLeast n = (>= (fromIntegral n :: Natural)) . genericLength . filter id
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atleast :: Int -> [Bool] -> Bool
atleast n bools = length tn == n
  where  tn = take n . filter id $ bools

should work lazily unless I missed something.

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