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Apologies, as this may seem a very weird question. All of my experience in haskell has been writing functions which usually recursively progress (and some data element decreases with each iteration). However, I have a set of functions which each do some processing on a piece of data and I wanted my calling method to contain each stage, for example

(Pseudo code)

myFunc1 :: Something1 -> Something2

execute myFunc1 Something1
.
execute myFunc2
.
execute myFunc3
.
execute myFunc4
.

return Something2

But I am unsure if this is even possible? Do I simply have to have something silly like:

myFunc4(myFunc3(myFunc2(MyFunc1(Something1)))) ?

EDIT: The above line cannot be right, surely!

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2 Answers 2

up vote 8 down vote accepted

Use the function call operator $:

myFunc4 $ myFunc3 $ myFunc2 $ myFunc1 $ Something1

Or function composition:

myFunc4 . myFunc3 . myFunc2 . myFunc1 $ Something1

Or let:

let x = myFunc1 Something1 in
let y = myFunc2 x in
let z = myFunc3 y in
myFunc4 z
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2  
Or, more idiomatically (for unknown reason, maybe it just looks nicer): myFunc4 . myFunc3 . myFunc2 . myFunc1 $ Something1. –  luqui Nov 12 '11 at 22:04
1  
Or the composition operator (.), myFunc4 . myFunc3 . myFunc2 . myFunc1 $ Something1. Damn, I'm just a too slow typist! –  Daniel Fischer Nov 12 '11 at 22:05
    
what if myfunc2 only happened, dependent on a conditional (IF) clause? –  user997112 Nov 12 '11 at 22:06
    
@user997112: use a let combined with an if-then-else, or define a custom combinator. Or put the conditional logic inside the function. –  larsmans Nov 12 '11 at 22:07

If you want to keep left-to-right reading order, you can define

(.>) = flip (.) -- are those in standard library somewhere?
($>) = flip ($)

myComplex = Something1 $> myFunc1 .> myFunc2 .> myFunc3 .> myFunc4
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Thanks! that was what I was looking for! –  rpax Jul 2 '14 at 9:28

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