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What exactly that declaration of method parameter means:

def myFunc(param: => Int) = param

What is meaning of => in upper definition?

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10  
Use Symbol Hound in the future. –  Daniel C. Sobral Mar 1 '12 at 16:29
    
possible duplicate of Scala - What does ' => SomeType' means? –  Daniel C. Sobral Mar 1 '12 at 16:29
    
Don't know how I didn't find it... Think I should change my glasses... :) –  PrimosK Mar 1 '12 at 19:59
2  
Stack Overflow search doesn't help -- it ignores symbols. That's why symbol hound was created. –  Daniel C. Sobral Mar 1 '12 at 20:57
    
Didn't know for symbolhound.com.. Great tip.. Thank you... +1 –  PrimosK Mar 1 '12 at 23:17
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3 Answers

up vote 25 down vote accepted

This is so-called pass-by-name. It means you are passing a function that should return Int but is mostly used to implement lazy evaluation of parameters. It is somewhat similar to:

def myFunc(param: () => Int) = param

Here is an example. Consider an answer function returning some Int value:

def answer = {println("answer"); 40}

And two function, one taking Int and one taking Int by-name:

def eagerEval(x: Int) = {println("eager"); x;}
def lazyEval(x: => Int) = {println("lazy"); x;}

Now execute both of them using answer:

eagerEval(answer + 2)
> answer
> eager

lazyEval(answer + 2)
> lazy
> answer

The first case is obvious: before calling eagerEval() answer is evaluated and prints "answer" string. The second case is much more interesting. We are actually passing a function to lazyEval(). The lazyEval first prints "lazy" and evaluates the x parameter (actually, calls x function passed as a parameter).

See also

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Great explanation!!! +1 –  PrimosK Feb 29 '12 at 23:23
2  
The term you want is "pass-by-name"—not "pass-by-value". Passing by value is something quite different; it's what Java does with primitives. –  Destin Feb 29 '12 at 23:31
4  
I think you mean "call-by-name", not "pass-by-name" or "pass-by-value" (see language spec 4.6.1) –  Luigi Plinge Feb 29 '12 at 23:59
    
@Destin: of course you were right, corrected, thanks! –  Tomasz Nurkiewicz Mar 1 '12 at 7:39
    
Apologies as it's been sometime since the question was answered, but, in trying to get my head around this, is it fair to say that if neither function above had the final 'x' return/call, then only 'eagerEval(..)' would execute the 'answer' function, as at least one 'x' reference is necessary within the 'lazyEval(...)' function, due to lazyEval()'s usage of Scala's "call-by-name" functionality (i.e. the inclusion of '=>' in lazyEval(...) 'name: TYPE' parameter definition)? –  Big Rich Jun 11 at 17:12
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Just to make sure there is an answer that uses the proper term: the Scala Language Specification uses the term call-by-name:

The type of a value parameter may be prefixed by =>, e.g. x: => T . The type of such a parameter is then the parameterless method type => T . This indicates that the corresponding argument is not evaluated at the point of function application, but instead is evaluated at each use within the function. That is, the argument is evaluated using call-by-name.

-- Section 4.6.1 of the Scala Language Specification

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To add to Tomasz Nurkiewicz's answer above, the difference I encounter between () => Int and => Int is that the second allows calling with bare blocks:

scala> def myfunc(f : () => Int ) = println("Evaluated: " + f )
myfunc: (f: () => Int)Unit

scala> def myfunc2(f : => Int ) = println("Evaluated: " + f )
myfunc2: (f: => Int)Unit

scala> myfunc({1})
<console>:9: error: type mismatch;
 found   : Int(1)
 required: () => Int
              myfunc({1})
                  ^

scala> myfunc2({1})
Evaluated: 1
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