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scala> val alist = List(1,2,3,4,5)
alist: List[Int] = List(1, 2, 3, 4, 5)

scala> alist filter { 2.< }
res2: List[Int] = List(3, 4, 5)

scala> alist filter { 2 < }
res3: List[Int] = List(3, 4, 5)

scala> alist filter { > 3 }
<console>:1: error: ';' expected but integer literal found.
       alist filter { > 3 }

Why would { 2.< } and {2 <} work? I think at least I should write { 2 < _ } right?

A method that requires no arguments, you can alternatively leave off the dot and use postfix operator notation:

scala> val s = "Hello, world!"
s: java.lang.String = Hello, world!
scala> s toLowerCase
res4: java.lang.String = hello, world!

But here, < method is not those kinds of methods which requires no arguments right?

Can you point me what is this usage?

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I don't think it's a duplicate. The linked question is about different syntax options for functions, this one is turned the other way round, resulting in the given syntax error. –  Frank Feb 24 '12 at 8:05

3 Answers 3

up vote 1 down vote accepted

What is happening is an Eta Expansion (6.26.5):

Eta-expansion converts an expression of method type to an equivalent expression of function type.

In this case, 2 < is a method type: (one of) the method < on Int. However, filter expects a function type. In such a case, Scala does automatic eta expansion.

Note that, because the type expected by filter is known, it can correctly infer what 2 < method is being called.

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The reason for this is that 2 is an object, so if you write 2.< or 2 < (which are actually the same in Scala), then you are calling a method < on the object 2.

If you just write < or > the compiler will look for such a method in the local scope, but won't find one. Similarly, writing > 3, the compiler needs a method > available, which isn't.

You can also see this behavior in the console directly:

scala> 3.<
<console>:8: error: ambiguous reference to overloaded definition,
both method < in class Double of type (x: Char)Boolean
and  method < in class Double of type (x: Short)Boolean
match expected type ?
               3.<
                 ^

As you can see, there are several implicts defined, which turn 3 into an object of a class that defines a < method. So this works in principal, but cannot stand on its own. It works, however, if you have more type information like in your example.

Contrast this with the following:

scala> <(3)
<console>:8: error: not found: value <
              <(3)
              ^

Here you can see the compiler looking for a standalone < somewhere. Note that the error message says value, but this still means it could be a function, as the value type may be (Int, Int) => Boolean or something like that.

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So why you can call a method with no argument like 2.< and why this is equivalent to 2 < ? any where address this usage formally? Why I cannot call my method with empty arguments? –  Sawyer Feb 24 '12 at 8:25
    
in this context scala allow you to write (x: Int) => 2 < x, x => 2.<(x), 2.<(_), 2 < _, 2.< or just 2 <. In all this cases scala will create anonymous function of type Int => Boolean, which will invoke method < when called. –  incrop Feb 24 '12 at 8:46
    
@incrop, your link in the other post does answer why the _ can be omitted, but the 2.< syntax is inconsistent with the syntax rule. If you can call a method like this, it means it doesn't have any arguments, and it does not produce and side effects, like s.toString, unless I can see this usage is address officially in somewhere. –  Sawyer Feb 24 '12 at 9:06
1  
The rules that applied here are explained in §6.26.2 (Method Conversions) and §6.26.5 (Eta Expansion) of scala reference. –  incrop Feb 24 '12 at 9:32

2.< refers to the method < of object 2, whereas 2.<(_) returns a new function with one argument. The latter is a shortcut for (is expanded to) (x: Int) => 2 < x where the type Int was inferred by the scala compiler from the type of the elements of alist.

> 3 in your case does not refer to any method or object of any object. > is a legal scala identifier (for a method, function or object), but 3 is not a legal identifier (it begins with a digit). > a could be a reference a member a of object > (>.a). But neither of those exist in your example. _ > 3 however returns a new function with one argument, which you could also write (x: Int) => x > 3.

This is in essence the same than Daniel C. Sobral's answer and incrop's comment to Frank's answer, but less formal and with more examples. Hope this helps get an intuition.

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thank you, I got it now. –  Sawyer Feb 25 '12 at 8:30

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