Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I understand calling function(1) but not function(1)(2), how does it work?

also possible for function(1)(2)(3)(4) too?

share|improve this question
add comment

4 Answers

up vote 11 down vote accepted

In this case you are supposing that function(1) returns a function, than you are calling this new, anonymous function with an argument of 2.

See this example:

function sum(a) {
    return function(b) {
        return a+b;
    }
}

// Usage:
window.alert(sum(5)(3));         // shows 8

var add2 = sum(2);
window.alert(add2(5));           // shows 7
window.alert(typeof(add2));      // shows 'function'

Here we create a function sum that takes one argument. Inside the function sum, we create an anonymous function that takes another argument. This anonymous function is returned as the result of executing sum.

Note that this anonymous function is a great example of what we call closure. A closure is a function that keeps the context in which it was created. In this case, it will keep the value of the variable a inside it, as did the example function add2. If we create many closures, they are independent as you can see:

var add3 = sum(3);
var add4 = sum(4);

window.alert(add3(3)); // shows 6
window.alert(add4(3)); // shows 7

Furthermore, they won't get "confused" if you have similarly named local variables:

var a = "Hello, world";

function multiply(a) {
    return function(b) {
        return a * b;
    }
}

window.alert(multiply(6)(7)); // shows 42

var twoTimes = multiply(2);
window.alert(typeof(twoTimes));
window.alert(twoTimes(5));

So, after a call to sum(2) or multiply(2) the result is not a number, nor a string, but is a function. This is a characteristic of functional languages -- languages in which functions can be passed as parameters and returned as results of other functions.

share|improve this answer
    
+1 for great link to closures –  bguiz Nov 21 '09 at 13:33
add comment

You have a function that returns a function:

function f(n) {
  return function(x) {
    return n + x;
  };
}

When you call f(1) you get a reference to a function back. You can either store the reference in a variable and call it:

var fx = f(1);
var result = fx(2);

Or you can call it directly:

var result = f(1)(2);

To get a function that returns a function that returns a function that returns a function, you just have to repeat the process:

function f(n) {
  return function(x) {
    return function(y) {
      return function(z) {
        return n + x + y + z;
      }
    }
  };
}
share|improve this answer
1  
Curious about the downvote? If you don't explain what it is that you don't like, it's rather pointless... –  Guffa Nov 21 '09 at 18:36
add comment

If your function returns a function, you can call that too.

x = f(1)(2)

is equivalent to:

f2 = f(1)
x = f2(2)
share|improve this answer
add comment

The parenthesis indicate invocation of a function (you "call" it). If you have

<anything>()

It means that the value of anything is a callable value. Imagine the following function:

function add(n1) {
    return function add_second(n2) { 
        return n1+n2
    }
}

You can then invoke it as add(1)(2) which would equal 3. You can naturally extend this as much as you want.

share|improve this answer
    
No need to give a name to the function being returned, btw. return function(n2) would be just as good, and less typing, too. –  Chris Charabaruk Nov 22 '09 at 6:40
    
I know. I felt maybe it would be better to not muddy the issue at hand by also using anonymous functions. –  Svend Nov 22 '09 at 12:31
add comment

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.