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How are these two functions parsed?

>  (** (1/2)) $ 40
it :: Double

>  ((**) (1/2)) $ 40
it :: Double
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1 Answer 1

up vote 7 down vote accepted

The first one is a right section, and is shorthand for:

(\x -> x ** (1/2)) 40

The second one is using the function form of the operator **, essentially treating it as if it were a named function like pow or something:

(**) (1/2) 40

which equals

(1/2) ** 40

I've omitted the $s from your code because they are redundant.

(foo bar) $ baz = (foo bar) baz = foo bar baz
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Depending on the fixity of foo the last one (foo bar baz) might not be equivalent to the other two. – adamse Nov 29 '10 at 22:18
@adamse, I meant for normal functions like pow or (**). But yeah the last one was a little out of place. I just couldn't let (foo bar) baz be the last word, since those parens look awfully redundant :-) – luqui Nov 29 '10 at 22:22

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