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I have the following exercise code where I'm trying to calculate the sum of all the primes from 1-10 which is crashing due to recursion.
I'm having trouble with my for and while loops as the code doesn't seem to be cycling through my var i, and is getting stuck on the initial assignment of i = 3.
I'm not looking for the correct answer or the most efficient answer yet but I am looking for someone to help me understand what's wrong.
Here's the code:

var array = [2];
var total = 0; 
var j = 0;
function isPrime(i, j) {
if ( i%array[j] === 0 ) {
        console.log("i was " + i + " and j was " + j);
        console.log(i + " is not a prime");
        j = array.length;
    }
    else if ((j + 1) === array.length) {
        console.log(i + " is a prime");
        total += i;
        console.log("total so far is " + total);
        array.push(i);
        console.log(array);
        j = array.length;
        console.log(j);
    }
    else {
        j++;
        isPrime(i,j);
    }
}

for(var i = 3; i <=10; i++) {
   while(j < array.length) {
       console.log("i is " + i + " and j is " +j);
       isPrime(i, j);
   }
}

console.log(total);
console.log(array);  
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1 Answer 1

up vote 3 down vote accepted
var j = 0;
function isPrime(i, j) { …

means that you have two distinct j variables: One outside the function, and one inside that shadows the other. From inside you never will be able to assign or read the outer variable. Therefore, the outer j stays 0 forever and while (j < array.length) will loop infinitely.

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By shadow do you mean that the j in the function is a copy of the j initially introduced and assigned a 0, so I will have a j=0 outside of the function that remains assigned to 0 and a j=0 inside the function? Or is the j inside the function automatically assigned a 0 since I did not specify an assignment? Either way, I thought that since I assigned the initial j outside the function, then that j is public and accessible by any part of the code, is it not? –  Moolla Feb 14 '13 at 9:32
    
No, "shadow" means that you can't see the outer variable from inside the function since the inner one is bound stronger. There is no hidden initialisation, the inner j is just what you passed as a parameter (and may it be the value of the outer j) or undefined. –  Bergi Feb 14 '13 at 9:37

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