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How to write the following higher order Haskell function in Erlang?

applyTwice :: (a -> a) -> a -> a  
applyTwice f x = f (f x)
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1 Answer 1

1> Apply2 = fun(F, X) -> F(F(X)) end.
#Fun<erl_eval.12.82930912>
2> F = fun(Arg) -> Arg * 2 end.
#Fun<erl_eval.6.82930912>
3> Apply2(F, 10).
40

The problem is that, I'm not sure if it's what you actually need. Cause in Haskell, you can use applyTwice f as function, but not in Erlang (there is no built-in partial or curry functionality). You also can't do in Erlang something like

applyTwice :: (a -> a) -> a -> a  
applyTwice f = f . f
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Do we have curried form in Erlang? –  coffeMug Feb 27 '13 at 18:25
1  
@Coffe_Mug There is no syntax sugar to deal with currying. Of coure you can write function that will return function with necessary scope, but... it's hard to write and read. –  Alexey Kachayev Feb 27 '13 at 18:27
1  
@Coffe_Mug Also as Erlang functions with the same same and different arity (number of args) are different functions then currying becomes messy. –  rvirding Feb 28 '13 at 22:55

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