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I'm trying to learn Haskell, and I'm writing the unzip function (yes I know it's built in, this is practice) but I'm having issues with my recursion line. I have:

-- unzip turns a list of two element tuples into two lists
unzip' [] = ([],[])
unzip' [(x,y):ls] = 
    let 
        (a, b) = unzip' ls
    in
        ([x] ++ a, [y] ++ b)

But I get the error:

Couldn't match expected type `(t, t1)'
           against inferred type `[(t, t1)]'
      Expected type: [(t, t1)] -> (t2, t3)
      Inferred type: [[(t, t1)]] -> ([a], [a1])
    In the expression: unzip' ls
    In a pattern binding: (a, b) = unzip' ls

I don't understand how to unpack the results of the recursive call. Can anyone explain how to unpack the two lists from the returned tuple?

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3  
Just a side note: You can always write e:es instead of [e] ++ es this is much cheaper (1 constructor call) vs. 1 constructor calls and a not so cheap function call. Even if that nanosecond does not matter, the first form is much more readable. –  Ingo Sep 23 '11 at 7:27

1 Answer 1

up vote 6 down vote accepted

i don't know if this solves it but it looks to me that

unzip' [(x,y):ls] =

should just be:

unzip' ((x,y):ls) =
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That's exactly it: [(x,y):ls] matches a one-element list whose only element is a list of pairs. –  Rahul Sep 23 '11 at 5:59
    
Wow I'm dumb, those were supposed to be parentheses. I never would've figured that out, thanks a ton. –  user550617 Sep 23 '11 at 6:00
2  
Using Control.Applicative you have the beautiful unzip' = (,) <$> map fst <*> map snd –  Landei Sep 23 '11 at 6:42
1  
@Landei: Or, using Control.Arrow, unzip' = map fst &&& map snd. –  hammar Sep 23 '11 at 8:27
3  
@hammar: That's what I love when writing Haskell: If you think you have the "perfect" solution, there is always a better one :-) –  Landei Sep 23 '11 at 8:58

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