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I have 2 lists:

[[1,2],[4,5]]

and

[0, 3]

and I'd like to turn it into

[[0,1,2],[3,4,5]]

I've created a function that does just that:

myFun xxs xs = map (\x -> (fst x):(snd x)) (zip xs xxs)

and it works. But I am still left wondering whether there might exist a better way to accomplish this without using the zip. Is there any?

Basically what I want to do is iterate along the 2 lists at the same time, something that I can't think of a way to do in Haskell without resorting to zip.

Thanks

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2  
zipWith f xs ys = map (uncurry f) $ zip xs ys –  ephemient Dec 2 '10 at 21:52

3 Answers 3

up vote 7 down vote accepted

Use zipWith. For example:

zipWith (:) [0,3] [[1,2],[4,5]]

Gives:

[[0,1,2],[3,4,5]]
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Ahh! Wonderful! –  devoured elysium Dec 2 '10 at 21:37

Why is zip not an option?

Or should I say, zipWith.

zipWith (\x y -> x:y) xs xxs
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It's not that it's not an option. I am just wondering if there are other ways of doing it. –  devoured elysium Dec 2 '10 at 21:28
    
Ahhhhhhhh. That zipwith might just be what I was looking for! –  devoured elysium Dec 2 '10 at 21:30
    
zipWith is the intended way to join the elements of two lists using an arbitrary function. Any other method is basically reimplementing zipWith. –  Anon. Dec 2 '10 at 21:31
2  
You can also do this with parallel list comprehension: [a+b | a <- [1, 2, 3] | b <- [4, 5, 6]], which I think are still a non-standard extension, but GHC supports with -XParallelListComp. That said, zipWith (:) is the right answer. –  jtdubs Dec 2 '10 at 21:34

You can move the zip into the type with ZipList from Control.Applicative:

myFun xxs xs = getZipList $ (:) <$> ZipList xs <*> ZipList xxs
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