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Does Scala have an operator similar to Haskell's $?

-- | Application operator.  This operator is redundant, since ordinary
-- application @(f x)@ means the same as @(f '$' x)@. However, '$' has
-- low, right-associative binding precedence, so it sometimes allows
-- parentheses to be omitted; for example:
--
-- >     f $ g $ h x  =  f (g (h x))
--
-- It is also useful in higher-order situations, such as @'map' ('$' 0) xs@,
-- or @'Data.List.zipWith' ('$') fs xs@.
{-# INLINE ($) #-}
($)                     :: (a -> b) -> a -> b
f $ x                   =  f x
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11  
For the sake of making the question stand alone, it would be nice if you explained what that Haskell construct is / does. –  Randall Schulz Sep 15 '10 at 17:49
1  
$ is apparently right-associative and has a low precedence learnyouahaskell.com/…. –  huynhjl Sep 15 '10 at 19:36
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1 Answer 1

up vote 18 down vote accepted

Yes, it's written "apply"

fn apply arg

There's no standard punctuation operator for this, but it would be easy enough to add one via library pimping.

  class RichFunction[-A,+B](fn: Function1[A, B]){ def $(a:A):B = fn(a)}
  implicit def function2RichFunction[-A,+B](t: Function1[A, B]) = new RichFunction[A, B](t)

In general, while Scala code is much denser than Java, it's not quite as dense as Haskell. Thus, there's less payoff to creating operators like '$' and '.'

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8  
One of the bigger wins of $ is its use in operator sections: (f $) and ($ x), which don't exist in Scala (you'd write f(_) and _(x) instead, but you can't do that in Haskell). –  Alexey Romanov Sep 15 '10 at 18:35
4  
apply is left-associative. $ is right-associative. –  Anonymous Aug 23 '11 at 17:24
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