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I'm trying to write a haskell function that takes in two lists of integers and generates a list with elements that have been taken alternatingly from the two lists.

I have the function:

blend xs ys

An example:

blend [1,2,3] [4,5,6]

should return

[1,4,2,5,3,6]

My logic is to zip the two lists together, generating the pairs of alternate elements, then somehow remove them from their tuples.

It's removing them from their tuples that I can't figure out how to implement.

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4 Answers

up vote 13 down vote accepted

How about exchanging the arguments during recursion-descend?

blend (x:xs) ys = x:(blend ys xs)
blend _ _ = []

You can even generalise this approach for any number of lists (I'll leave this to you) or take the remaining elements of a list if the other is empty:

blend _ ys = ys
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Very cool way to do it! Thanks. –  Shabu Dec 12 '11 at 6:41
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I will assume that this is homework. Provided that you can create the following list (as you said):

[(1,4),(2,5),(3,6)]

... you can solve it with 2 functions:

  1. You need to convert a tuple (a, b) into a list [a, b]. Try using pattern matching! This function needs to be applied (aka. mapped) over all elements of the list you have.
  2. You will have a list of lists, like [[1,4],[2,5],[3,6]], so you need a function for concatenating the sublists into one big list.

There are of course other, maybe superior, ways to solve this problem, but it might be a good idea to continue with your original approach.

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I think an answer to a [homework] question that continues on in the original direction is particularly helpful (unless the direction was completely wrong, which, in this case, it wasn't). –  Tikhon Jelvis Dec 12 '11 at 7:56
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If you want to zip, generate lists instead of tuples:

concat $ zipWith (\x y -> [x,y]) [1,2,3] [4,5,6]

Some pointless fun:

concat $ zipWith ((flip(:)).(:[])) [1,2,3] [4,5,6]  

Probably the easiest way:

import Data.List
concat $ transpose [[1,2,3],[4,5,6]]
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A solution without using concat or explicit recursion:

blend l = foldr($)[] . zipWith(.) (map(:)l) . map(:)

We can make also make this point-free

blend' = (foldr($)[].) . (.map(:)) . zipWith(.) . map(:)


How it works: first decorate both lists with cons operators

\[1,2,3] [4,5,6] -> [1:, 2:, 3:] [4:, 5:, 6:]

then we zip this together with function composition

-> [(1:).(4:), (2:).(5:), (3:).(6:)]

and finally fold the application of all these compositions from the right to the empty list

-> (1:).(4:) $ (2:).(5:) $ (3:).(6:) $ [] = 1:4:2:5:3:6:[] = [1,4,2,5,3,6]
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What's wrong with this? –  leftaroundabout Dec 12 '11 at 12:07
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