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So I'm new to haskell and I've been playing with it for a while now. I want to get my function that outputs all list permutations to work. I have written 2 implementations, one works well, the other is giving me an error. Any help would be awesome.

This is the first (working) implementation:

permute [] = [[]]
permute xs = [y| x <- xs, y <- map (x:) $ permute $ delete x xs]

This one is giving me an error:

permute [] = [[]]
permute xs = map (\x -> map (x:) $ permute $ delete x xs) xs

and here's the error message:

Occurs check: cannot construct the infinite type: t0 = [t0]
Expected type: [t0]
Actual type: [[t0]]
In the expression: map (x :) $ permute $ delete x xs
In the first argument of `map', namely
`(\ x -> map (x :) $ permute $ delete x xs)'

I'd appreciate if someone could explain why I'm getting this error. Thanks

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Note that this approach with delete is rather inefficient. –  leftaroundabout Jul 6 '12 at 10:52
    
Thanks for the heads up, I am planning to check out the implementation in Data.List –  turingcomplete Jul 6 '12 at 13:09
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1 Answer

up vote 5 down vote accepted

Use type signature to make compiler life easier.

permute :: Eq a => [a] -> [[a]], and now we have:

Couldn't match type `a' with `[a]'
  `a' is a rigid type variable bound by
      the type signature for permute :: Eq a => [a] -> [[a]]
      at perm.hs:4:1
Expected type: [a]
  Actual type: [[a]] 
In the expression: map (x :) $ permute $ xs
In the first argument of `map', namely
  `(\ x -> map (x :) $ permute $ xs)'

So, seems like we need to use concatMap instead of map.

permute :: Eq a => [a] -> [[a]]
permute [] = [[]]
permute xs = concatMap (\x -> map (x:) $ permute $ delete x xs) xs
share|improve this answer
    
Thanks, that made perfect sense. –  turingcomplete Jul 6 '12 at 9:24
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