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Can anyone please explain me why I can do:

a.mapValues(_.size)

instead of

a.mapValues(x => x.size)

but I can't do

a.groupBy(_)

instead of a

a.groupBy(x => x)
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9  
You can use identity in cases where you need function x => x: a groupBy identity –  incrop Oct 6 '11 at 11:29
    
@incrop Thanks for the tip, I never noticed the identity function was already in Predef... –  paradigmatic Oct 6 '11 at 11:42

2 Answers 2

up vote 10 down vote accepted

It isn't easy to see it here:

a.groupBy(_)

But it's easier to see it in something like this:

a.mkString("<", _, ">")

I'm partially applying the method/function. I'm applying it to some parameters (the first and last), and leaving the second parameter unapplied, so I'm getting a new function like this:

x => a.mkString("<", x, ">")

The first example is just a special case where the sole parameter is partially applied. When you use underscore on an expression, however, it stands for positional parameters in an anonymous function.

a.mapValues(_.size)
a.mapValues(x => x.size)

It is easy to get confused, because they both result in an anonymous function. In fact, there's a third underscore that is used to convert a method into a method value (which is also an anonymous function), such as:

a.groupBy _
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When you write a.groupBy(_) the compiler understand it as the anonymous function:

x => a.groupBy(x)

According to Scala Specifications §6.23, an underscore placeholder in an expression is replaced by a anonymous parameter. So:

  • _ + 1 is expanded to x => x + 1
  • f(_) is expanded to x => f(x)
  • _ is not expanded by itsef (the placeholder is not part of any expression).

The expression x => a.groupBy(x) will confuse the compiler because it cannot infer the type of x. If a is some collection of type E elements, then the compiler expects x to be a function of type (E) => K, but type K cannot be infered...

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Hmmm... Why? :-) –  Hugo S Ferreira Oct 6 '11 at 12:50
    
@HugoSFerreira Answer updated with explanations. –  paradigmatic Oct 6 '11 at 13:15
    
Thank you. But, why then isn't the a.mapValues(_.size) interpreted as x => a.mapValues(x.size) ? –  Hugo S Ferreira Oct 6 '11 at 14:37
2  
@paradigmatic: But _ is an expression too; its an expression that denotes a value on which a method is called. And the whole a.mapValues(_.size) is an expression too. As is whatever block contains this line. I think I've got an intuitive mostly-right handle on how it works, but is there a good definition of exactly "how far out" the Scala compiler will go? i.e. why it doesn't stop at just turning _ into x => x, but does stop at turning _.size into x => s.size? –  Ben Oct 6 '11 at 23:39
1  
I think it stops after the first method application. Remember that _.size, _ + 1, fn(_) etc. are all translated to method applications in Scala. –  Jesper Nordenberg Oct 7 '11 at 11:49

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