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I have the following function:

function :: [String] -> [[Int]] -> ([[Int]],[[Int]])

I would like to know if it is possible to do something like this:

function :: [String] -> [[Int]] -> ([[Int]],[[Int]])
function a (b:bs) = if condition then ([[]], [b]) ++ function a bs else 
([b], [[]]) ++ function a bs

Of course I could write two functions which returns each [[Int]] but I would like to do it in a more appropriate way for Haskell.

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3 Answers 3

up vote 3 down vote accepted

How about using map?

import Data.Monoid
f :: t -> [a] -> ([a], [a])
f a = mconcat . map part
  where part b = if True then ([], [b]) else ([b], [])

So we let part choose which list our element of b will go in and let `map, and mconcat to flatten it.

It's idiomatic haskell to avoid explicit recursion so while you can fix your code by substituting mappend for ++ since you asked for the more appropriate haskell way I'll suggest this.

Oh also, you could just use break

f s = break $ \b -> condition
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This works good for me. There is only one mistake which I don't understand. My output contains many []. I thought that [] will not be added to the final output. –  user2925688 Oct 31 '13 at 20:19
    
So with ([], b) I actually mean, that the first or the second value is empty. –  user2925688 Oct 31 '13 at 20:34
    
@user2925688 Should be fixed now –  jozefg Oct 31 '13 at 20:40
    
that works perfect - thank you very much –  user2925688 Oct 31 '13 at 20:55
    
I probably would need the base case f [] _! how would I add this in that case? –  user2925688 Nov 4 '13 at 16:17

There is a monoid instance for a tuple:

(Monoid a, Monoid b) => Monoid (a, b)

So the result of mappend will be:

([1], [2]) `mappend` ([3], [4])
([1, 3], [2, 4])

So basically you just replace ++ with mappend in your example

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1  
Preferrably write just ([1], [2]) <> ([3], [4]). –  leftaroundabout Oct 30 '13 at 20:19
    
Note that the mappend for tuples isn't lazy, so this might be a bad idea for the current use case with long lists. –  Ørjan Johansen Oct 31 '13 at 2:24

The most Haskellic(?) way would probably be to use unzip:

function a bs = unzip $ function' a bs
    where function' a (b:bs) = (if condition then ([], b) else (b, [])) : function' a bs
          function' _ [] = []  -- You forgot the base case.
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