0
function counter() {
    var n = 0;

    return function counter() {
        n += 1;

        return n;
    }
}



var count = counter();

console.log('counter() returns: ' + count);
console.log('invoking the function returns: ' + count());
console.log('invoking the function returns: ' + count());
console.log('invoking the function returns: ' + count());

This function returns a single number and every time it is invoked, the function returns a number that is "one" number higher than the one before.

The problem with this code is this:

console.log('counter() returns: + count);

This would print the actual code of inner function of a counter which is printed function counter(){ n+= 1; return n; } instead of 0. Is there anyway to fix it? The other console statements print correctly, which prints out 1 2 3

3
  • The code is printed because, the inner function is returned when outer function is called. To fix it, just call the count() function. – Tushar Feb 6 '17 at 3:28
  • 1
    In that place you print count, in other places you print count(). The two are not the same. You do not have the code there that would allow you to print 0. – Amadan Feb 6 '17 at 3:28
  • It's not something weird, but the string representation of the function count. What else did you expect? – Bergi Feb 6 '17 at 3:52
0

In the first case the output you get is the function definition ,since you are returning the function to a varibale by assigning var count = counter(). You need to call count like count() so that it executes the function definition

console.log('counter() returns: ' + count());

If you want to print 0 you need to initialize var n = -1 because otherwise your result is will start from 1 as it value is incremented and then returned

function counter() {
    var n = -1;

    return function counter() {
        n += 1;

        return n;
    }
}



var count = counter();

console.log('counter() returns: ' + count());
console.log('invoking the function returns: ' + count());
console.log('invoking the function returns: ' + count());
console.log('invoking the function returns: ' + count());

0

There's no way your code can print 0, because the value is incremented before it is returned. If you want the first number returned to be 0, start at -1.

function counter() {
    var n = -1;
    return function () {
        n += 1;
        return n;
    };
}

var count = counter();

console.log('counter() returns: ' + count);
console.log('invoking the function returns: ' + count());
console.log('invoking the function returns: ' + count());
console.log('invoking the function returns: ' + count());

console.log(count) prints the function itself to the console. That's expected.

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