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I am trying to write a function that returns the PrimeNumber. for testing purposes i am just doing a console.log for stages of this function, to try and understand it better. so this line(line:18) in my total function will just return i; as opposed to do a console.log So Basically, 30 will be passed to the function and the function will return every prime number <=30.

It is based on this from wiki: This routine consists of dividing n by each integer m that is greater than 1 and less than or equal to the square root of n. If the result of any of these divisions is an integer, then n is not a prime, otherwise it is a prime.

(Question here: 25/Math.sqrt(25) = 0, therefore NotPrime BUT 25/2=12.5, 25/3=8.3333 25/4=6.25 => IsPrime as 12.5 is not an integer Or am I mising something here???)

there is also the problem of duplication: 13 is printed twice because 13/2 and 13/3 is executed. Question here: I would like to fix this duplication also?

function isInt(n) {
   return n % 1 === 0;
}

var test = 25
console.log(Math.sqrt(test));

function prime(n) {
for(var i = 1; i <= n; i++) 
{   if(i%2 !==0 && i%3 !==0){ // if i/2 does not have a remainder it might be a prime so go to next line else jump 

to next number and i%3 the same 
        var a = Math.floor(Math.sqrt(i));
        for(j = 2; j<=a; j++){ 

            console.log(i + "/" + j); //print j//it prints 9 twice and 10 twice 
            console.log("==" + i/j);                    //because the sqrt of 9 = 3 => 

for j= 2 and j=3 
            if(isInt(i/j)) {}
            else{console.log("----"  + i + "is Prime");}
        }
    }
}
};

prime(test);

Another example here using aslightly different method: but again I have the same problem as the above 25 and duplication

var test = 25
console.log(Math.sqrt(test));

for(var i = 1; i <= test; i++) 
{   if(i%2 !==0 && i%3 !==0){ // if i/2 does not have a remainder it might be a prime so go to next line else jump to next number and i%3 the same 
        var a = Math.floor(Math.sqrt(i));
        for(j = 2; j<=a; j++){ 

            console.log(i + "%" + j); //print j//it prints 9 twice and 10 twice 
            console.log("==" + i%j);                    //because the sqrt of 9 = 3 => for j= 2 and j=3 
            if(i%j !==0) {
                console.log("----"  + i + "is Prime");

            }
        }
    }
}

[EDIT]Thank you all very much for pointing out my flaws/mistakes here is my working example. Thank you all again!!

function isInt(n) {
   return n % 1 === 0;
}

var test = 100
console.log(Math.sqrt(test));

function prime(n) {
    for (var i = 1; i <= n; i++) {
        var a = Math.floor(Math.sqrt(i));
        var bool = true;
        for(j = 2; j<=a; j++) { 

            if(!isInt(i/j)) {
                //console.log(i+"/"+j+"=="+i/j+", therefore "+i+" is Prime");
            } else {bool = false;}
        }
        if(bool) {console.log(i+"/"+j+"=="+i/j+", therefore "+i+" is Prime");}
    }
}
prime(test);
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This isn't a particularly efficient way to go about this –  NullUserException Jul 1 '13 at 23:15
    
Read carefully: "If the result of any of these divisions is an integer, then n is not a prime, otherwise it is a prime." That is you have to dived the number by every integer between 2 and the square root (inclusive) and if one of the divisions result in an integer, the number is not prime. 25/5 = 5, hence not prime. –  Felix Kling Jul 1 '13 at 23:20
1  
25/Math.sqrt(25) = 0 are you sure? –  Chris O'Kelly Jul 1 '13 at 23:23
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1 Answer

up vote 0 down vote accepted

25/Math.sqrt(25) = 0, therefore NotPrime

BUT 25/2=12.5, 25/3=8.3333 25/4=6.25 => IsPrime

No. Only because it neither is divisible by 2, 3, and 4, it does not mean that 25 is a prime number. It must be divisible by nothing (except 1 and itself) - but 25 is divisible by 5 as you noticed. You will have to check against that as well.

13 is printed twice because 13/2 and 13/3 is executed.

Question here: I would like to fix this duplication also?

Your logic is flawed. As above, just because a number is not divisible by an other number that does not mean it was prime - but your code prints results based on that condition. Instead, is has to be not divisible by all other numbers.

You just have an extra condition that nothing that is divisible by 2 or 3 enters the loop, but everything that is divisible by 5, 7, 11 etc (and not divisible by 2 or 3) is yielded. 25 is just the first number to occur in that series, the next ones will be 35 and 49.

Actually you're already testing 2 and 3 in the loop from 2 to a already, so you should just omit that condition. You would've noticed your actual problem much faster then if you had tried:

function prime(n) {
    for (var i = 1; i <= n; i++) {
        var a = Math.floor(Math.sqrt(i));
        for(j = 2; j<=a; j++) { 
            if(!isInt(i/j)) {
                console.log(i+"/"+j+"=="+i/j+", therefore "+i+" is Prime");
            }
        }
    }
}
prime(25);

The logic should be: Test all divisors from 2 to sqrt(i), and if i is divisible by any of them you know that it's not a prime. Only if it has passed the loop with none of them being a factor of i, you know in the end that it's a prime. I'll leave that as an exercise to you :-)

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