-1

I have to write a single function that must be invoked by either

sum(2,3); //5 
//or
sum(2)(3); //5

I write this piece of code

function sum (a,b){
return a + b;
}
sum(2,3);

And I get the 'TypeError: number is not a function'. Why?

  • 1
    "I have to write a single function that must be invoked by either" Why? And separately: You can't (reasonably) do that. – T.J. Crowder Aug 29 '15 at 11:13
  • Executing it as sum(2,3) will not give the TypeError as you described!! Guess you meant: sum(2)(3). Regarding your literal question why: Your current function returned a number (number a + number b is a number.. If (one of the) arguments was a string, then you would have gotten a string in return, which...*also* isn't a function). Then you tried to execute () this returned number (which is not a function), passing argument value 3. But since the number is not a function, all you got was a TypeError... Yes, I couldn't help myself, but then again.. you asked the question "why"... – GitaarLAB Aug 29 '15 at 14:02
1

You should use curried functions:

function sum(a, b) {
  if (b === undefined) {
    return function (b) {
      return a + b;
    }
  }
  return a + b;
}

// sum(1, 2) === sum(1)(2)
1

You can do something like:

function sum(a,b) {
   return arguments.length>1? a+b : function (b) { return a + b };
}
  • 1
    You'd better check arguments.length to be equal 2. sum(1, 0) will fail. – Yury Tarabanko Aug 29 '15 at 11:16
  • fixed now by using arguments.length>0 – Hazem Jan 13 '16 at 8:39
-1

You can only call the function in this manner.

sum(2,3);
  • 1
    Why? A fuction can return another function. – Yury Tarabanko Aug 29 '15 at 11:17
  • But in the above question, they are not returning the function. that's why i am saying. – Tabish Aug 29 '15 at 11:19
  • 2
    I believe that is why OP is asking for help :) He can't invoke his function the way he wants. Why? How to fix? Your answer gives nothing but a statement his code won't work. – Yury Tarabanko Aug 29 '15 at 11:30

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