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How can I zip a [Integer] with a [Integer -> Integer -> Integer] to get [Integer -> Integer]?

Example:

I tried:

Prelude> zipWith [1,2,3] (replicate 3 (*))

with the desired result of:

[(*1), (*2), (*3)]

But I got an error:

<interactive>:25:9:
    Couldn't match expected type `(a0 -> a0 -> a0) -> b0 -> c0'
                with actual type `[t0]'
    In the first argument of `zipWith', namely `[1, 2, 3]'
    In the expression: zipWith [1, 2, 3] (replicate 3 (*))
    In an equation for `it': it = zipWith [1, 2, 3] (replicate 3 (*))

EDIT @artyom-kazak corrected me - thank you.

Looks like I can do it with Applicatives:

Prelude Control.Applicative> let f = [(*)] <*> [1,2,3]
Prelude Control.Applicative> :t f
f :: [Integer -> Integer]

But, can I do this with zipWith alone?

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1 Answer 1

up vote 3 down vote accepted

You were close. There's an operator for application, $, which is useful in exactly such cases.

> :t zipWith ($) [(*),(*),(*)] [1..3]
zipWith ($) [(*),(*),(*)] [1..3] :: (Num b, Enum b) => [b -> b]

And if you want to have [1..3] first, it's zipWith (flip ($)).


Also, your Applicative variant is wrong, if only because of this:

> let f = [(*), (*), (*)] <*> [1,2,3]
> length f
9
share|improve this answer
    
thank you for this answer and correcting me on my bad applicative. –  Kevin Meredith Jul 27 '14 at 4:49

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