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Can someone please explain in plain language how this code works to give a result of 9?

what happens to the return of the inner function? Im assuming that the enclosing function return is assigned to the variables addTwo and addFive... where does the inner function get its argument (number)? Im totally lost on this and the tutorial doesn`t explain it.

function makeAddFunction(amount) {
  function add(number) {
    return number + amount;
  }
  return add;
}

var addTwo = makeAddFunction(2);
var addFive = makeAddFunction(5);
show(addTwo(1) + addFive(1));
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2 Answers

up vote 7 down vote accepted
var addTwo = makeAddFunction(2);

1. 2 is assigned as amount and bound within the function scope. The inner add function has access to this, and so keeps it "cached".

So what is returned is essentially function(number) { number + 2 };


var addFive = makeAddFunction(5);

2. 5 is assigned the same way, and function(number) { number + 5 }; is returned.

show(addTwo(1) + addFive(1));

3. function( number ) {number+2} is invoked and 1 is fed to the function, so 2+1 is returned which is 3.

4. function( number ){number+5} is invoked and 5 is fed to the function, so 5+1 is returned which is 6.

5. 6 and 3 are added, so we get 9.

6. 9 is fed to the show function.

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please explain one bit. when you say function (n ) {n + 2} is "invoked," is this because a reference to it was returned with "return add" and then stored in makeAddFunction(2), thereafter "invoked" by addtwo(1)? thanks for your help. –  mjmitche Feb 22 '11 at 6:06
    
The add function is returned by the makeAddFunction and it remembers what amount you gave it so yes, that sounds right. –  meder Feb 22 '11 at 6:07
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makeAddFunction returns function add that adds number to amount.

in line var addTwo = makeAddFunction(2); you've created a function with amount 2. If you call that function(addTwo) with some number, it return 2 + passed argument

By this logic: addTwo(1) = 2 + 1 = 3,

addFive(1) = 5 + 1 = 6

6 + 3 = 9

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