Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise
 def foo(x:Int, f:Unit=>Int) = println(f())

foo(2, {Unit => 3+4}

//case1
def loop:Int = 7
foo(2, loop) //does not compile

changing loop to 
//case 2
def loop():Int = 7
foo(2, loop) // does not compile

changing loop to
//case 3
def loop(x:Unit): Int = 7 //changing according to Don's Comments
foo(2,loop) // compiles and works fine

should'nt case 1 and case 2 also work? why are they not working?

defining foo as

def foo(x:Int, y:()=>Int)

then case 2 works but not case 1.

Arent they all supposed to work, defining the functions either way.

//also i think ()=>Int in foo is a bad style, y:=>Int does not work, comments??

share|improve this question
2  
def defines methods (which are not first class), not functions (which are first class). Partial application lifts methods to functions when you need them. – Randall Schulz May 5 '10 at 16:02
1  
Can you please elaborate.. I didnt get it. Did you mean, that the def's cannot be passed around. i.e the "loop" above cannot be passed to other functions? – scout May 5 '10 at 16:28
2  
Correct. When we say "first class" we mean of the same status as any other value like an Int, a String or an instance of some user-defined class. Methods cannot be treated in this way (they can only be called). Functions, on the other hand (which are instances of (subclasses of) FunctionN (N being the number of arguments)), are first class entities for the obvious reason that they're instances of a class. – Randall Schulz May 5 '10 at 18:28
up vote 56 down vote accepted

Scala distinguishes between the following things:

  • Functions/methods with no parameter lists ("by-name parameter" if a function)
  • Functions with one empty parameter list
  • Functions with one parameter of type Unit

None of these are equivalent, although as a convenience Scala allows you to elide empty parameter lists. (Incidentally, two empty parameter lists are also not the same.)

So, even though Unit is written (), this is not the same as the function argument parens () for a function or method. Instead, think of () as a Tuple0.

So, if you say f: Unit => Int, what you mean is "f takes one parameter, but it's a really boring parameter because it is Unit, which must always be the same boring Tuple0 value ()". What you're writing is really short for f: (Unit) => Int.

If you say f: () => Int, then you mean that "f takes no parameters and produces an Int".

If you say f: => Int, then you mean that "delay the execution of whatever statement produces an Int value until we use it in this code (and re-evaluate it each time)". Functionally, this ends up being basically the same as f: () => Int (and internally is converted into the same Function0 class), but it has a different usage, presumably to allow for a more compact form of closures (you always omit the => in the calling code).

share|improve this answer
    
So if I have a function def loop() = 7 It really makes no sense for me to insert unit, as in def loop(x:Unit) = 7 , if I want to pass it to another function like foo above. – scout May 7 '10 at 3:32
1  
@Scout: There's no reason to add a superfluous Unit in that case. It is useful for abstraction. Suppose you have a composition function: def comp[A,B,C](f: A=>B, g: B=>C, a: A) = g(f(a)) and you try to pass it a f that doesn't return a value. Now what do you do? Well, it turns out that Scala always does return something--at least () (the only possible value of type Unit). So now you can write a g that takes an input of type Unit and use the general composition function above. But for most situations, just use def f() = ... or def f = .... – Rex Kerr May 7 '10 at 14:07
    
Thanks for the clarification. I was trying to figure out how to do lazy evaulation. Note that the space between the : and = in f: => Int is important. – Jus12 Feb 26 '11 at 22:52
2  
@Jus12 - Indeed. Space between all operator characters is important. For example, val x=-2 is not going to work, because although you are probably thinking x equals -2, the parser sees x, weird operator =-, and 2. : is the "declare my type" operator; => is the "function produces this" operator. – Rex Kerr Feb 26 '11 at 23:07
    
Isn't it wrong to say () and Unit are the same? I would have thought () is the only INSTANCE of TYPE Unit. Just like null is the only instance of type Null? – Ustaman Sangat Jul 13 '13 at 15:45

()=>Int is Function0[Int] while Unit=>Int is Function1[Unit,Int]

scala> val function0: () => Int = () => 5
function0: () => Int = <function0>

scala> val function1: Unit => Int = u => 5
function1: (Unit) => Int = <function1>

scala> function0()
res0: Int = 5

scala> function1("anything")
res1: Int = 5

scala> function1(100)
res2: Int = 5

scala>

Also note that () is an object of Unit

scala> function1(())
res11: Int = 5

scala> function1 ()
res12: Int = 5

scala> function1()
res13: Int = 5

scala> val unit = ()
unit: Unit = ()


scala> function1(unit)
res15: Int = 5

scala> function1 apply unit
res16: Int = 5

scala>
share|improve this answer
    
scala> val function1: Unit => Int = Unit => 5 Note that in this line, the last "Unit" is not a type identifier, but just a name for the parameter (you could change it to "x" for example). – Dimitris Andreou May 11 '10 at 12:49
    
@Dimitris Andreou: Yes, you are right. – Eastsun May 11 '10 at 13:46
    
I get why function1(()) and function1 () works, but I don't understand why function1() works. I would expect this to follow the typical method invocation rules in Scala, that is, you'd need the space after the function name, or the unit value between the parameter parens... – ThaDon Jun 20 '12 at 18:22

In case 1 and 2 above, the return value of loop rather than loop itself is type checked for the second argument to foo and fails: Int != Unit => Int

The change to loop has a typo.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.