I'm trying to complete the codewars challenge that asks you to check if a number is a prime number. For whatever reason, my solution doesn't seem to work for the square of odd prime numbers (e.g. 9 returns true instead of false).

function isPrime(num) {

  if (num === 2) {
    return true;
  }
  else if(num > 1){
    for (var i = 2;  i < num; i++) {

      if (num % i !== 0 ) {
        return true;
      }

      else if (num === i * i) {
        return false
      }

      else {
        return false;
      }
    }
  }
  else {
    return false;
  }

}

console.log(isPrime(121));

P.s. I included that second else/if statement because I was trying to solve the problem.

21 Answers 21

up vote 58 down vote accepted

As simple as possible:

function isPrime(num) {
  for(var i = 2; i < num; i++)
    if(num % i === 0) return false;
  return num !== 1 && num !== 0;
}

With the ES6 syntax:

const isPrime = num => {
  for(let i = 2; i < num; i++)
    if(num % i === 0) return false;
  return num !== 1 && num !== 0;
}

You can also decrease complexity of the algorithm from O(n) to O(sqrt(n)) if you run the loop until square root of number:

const isPrime = num => {
    for(let i = 2, s = Math.sqrt(num); i <= s; i++)
        if(num % i === 0) return false; 
    return num !== 1 && num !== 0;
}
  • 2
    What the check for equality to 4 there is for? One may also only check the odd numbers. – zerkms Oct 23 '16 at 8:33
  • so make it i <= s and remove that ugly hardcoded condition? – zerkms Oct 23 '16 at 8:46
  • 1
    Thanks, I've removed this useless check. – Saka7 Oct 23 '16 at 8:53
  • 4
    @Saka7 This was a really helpful answer, especially because of the sqrt optimization, which I hadn't considered. @zerkms Suggested only checking the odd numbers (greater than two of course), which is something I expected to see as well in an optimized solution. You can greatly optimize your solution this way. I've made this JSPerf test to demonstrate. Thanks, to both of you for the guidance BTW. – gfullam Jan 17 at 16:53
  • 1
    isPrime(0) returns true, which is not the case. For the function to be mathematically correct, you need to add another condition to the return statement: return num !== 1 && num !== 0; – pavloko May 22 at 16:28

A small suggestion here, why do you want to run the loop for whole n numbers?

If a number is prime it will have 2 factors (1 and number itself). If it's not a prime they will have 1, number itself and more, you need not run the loop till the number, may be you can consider running it till the square root of the number.

You can either do it by euler's prime logic. Check following snippet:

function isPrime(num) {
  var sqrtnum=Math.floor(Math.sqrt(num));
    var prime = num != 1;
    for(var i=2; i<sqrtnum+1; i++) { // sqrtnum+1
        if(num % i == 0) {
            prime = false;
            break;
        }
    }
    return prime;
}

Now the complexity is O(sqrt(n))

For more information Why do we check up to the square root of a prime number to determine if it is prime?

Hope it helps

Cool version:

const isPrime = n => ![...Array(n).keys()].slice(2).map(i => !(n%i)).includes(true) && ![0,1].includes(n)

// A list prime numbers

function* Prime(number) { 
  const infinit = !number && number !== 0;
  const re = /^.?$|^(..+?)\1+$/;  
  let actual = 1;
 
  while (infinit || number-- ) {
      if(!re.test('1'.repeat(actual)) == true) yield actual;
      actual++
  };
};

let [...primers] = Prime(101); //Example
console.log(primers);

  • Very interesting solution, but I have no clue what is going on here (using a regex for generating a prime numbers sequence?) Can you give an explanation, please? – HynekS Nov 16 at 11:17
function isPrime(num) {
    var prime = num != 1;
    for(var i=2; i<num; i++) {
        if(num % i == 0) {
            prime = false;
            break;
        }
    }
    return prime;
}

DEMO

  • 2
    Instead of using for(var i=2; i < num; i++) you can use for (var i=2; i < Math.sqrt(num); i++) – creeperdomain Oct 23 '16 at 6:12
  • @creeperdomain enlighten? – Thomas W Jul 30 '17 at 13:11
function isPrimeNumber(n) {
  for (var i = 2; i < n; i++) { // i will always be less than the parameter so the condition below will never allow parameter to be divisible by itself ex. (7 % 7 = 0) which would return true
    if(n % i === 0) return false; // when parameter is divisible by i, it's not a prime number so return false
  }
  return n > 1; // otherwise it's a prime number so return true (it also must be greater than 1, reason for the n > 1 instead of true)
}

console.log(isPrimeNumber(1));  // returns false
console.log(isPrimeNumber(2));  // returns true
console.log(isPrimeNumber(9));  // returns false
console.log(isPrimeNumber(11)); // returns true
  • Please also explain what the code does in answers. – marcanuy Jul 7 '17 at 21:47
  • it will be great if you put a link – 3p3ch3 Oct 27 '17 at 1:28
function isPrime(num) {
  if (num <= 1) return false;
  if (num % 2 == 0 && num > 2) return false;
  let s = Math.sqrt(num); // makes for loop run faster
  for(let i = 3; i <s; i++)
      if(num % i === 0) return false;
  return num !== 1;
}
  • 2
    Please add an explanation to your code. It helps people to understand the algorithm, so they can adapt it instead of just copying your code. – Mr. T Apr 15 at 16:39

you can use below code in javascript for checking number is prime or not. It will reduce no of iteration and get the result fast.

function testPrime(num) {
        var isPrime = true;
        if (num >= 2) {
            if(num == 2 || num == 3){
               isPrime = true;
            }
            else if (num % 2 == 0) {
                isPrime = false;
            }
            else {
                for (i = 3; i <= Math.floor(Math.sqrt(num)); i += 2) {
                    if (num % i == 0) {
                        isPrime = false;
                        break;
                    }
                }
            }
        }
        else {
            isPrime = false;
        }
        return isPrime;
    }

//testPrime(21) false

  • testPrime(2) === false – iOnline247 Aug 31 '17 at 1:23
  • Thanks iOnline247, for correcting me. Now i have updated my code. – RASHID HAMID Sep 19 '17 at 9:27
  • @RASHIDHAMID i am really curious why you are doing +2 instead of +1 but still got the same result. – Rajkumar Bansal Jul 18 at 19:44
  • @RajkumarBansal I do +2 instead of +1 for improving the performance of loop. By +2 increment it will execute fast. – RASHID HAMID Aug 27 at 11:42
  • @RASHIDHAMID got it! – Rajkumar Bansal Sep 4 at 16:35

I think a better way to find a prime number is with this logic:

var p=prompt("input numeric value","10"); // input your number 
for(j=2;j<p;j++){ 
  if(isPrimes(j)){ 
    document.write(j+", "); // for output the value
  } // end if
}// end for loop
function isPrimes(n) {
  var primes = true;// let prime is true
  for (i=2;i<n;i++) {
    if(n%i==0) {
      primes= false; // return prime is false
      break; // break the loop
    }// end if inner 
  }// end inner loop
  return primes; // return the prime true or false
}// end the function

You are trying to check too much conditions. just one loop is required to check for a prime no.

function isPrime(num){
if(num==2) 
return true;
for(i=2;i<Math.sqrt(num);i++) // mathematical property-no number has both of its factors greater than the square root 
{
if(num % i==0) 
return false; // otherwise it's a prime no.
}
return true;
}

You have to consider every no. a prime no. unless it is divisible by some no. less than or equal to the square root.

Your solution has got a return statement for every case,thus it stops execution before it should.It doesn't check any number more than once.It gives wrong answer for multiple cases-- 15,35.. in fact for every no. that is odd.

It looks like your first if statement within the first 'if' statement within the for loop. Since if num = 9 and i = 2, 9 % i !== 0 but 9 is not prime since on the next iteration where i = 3, 9 % i === 0.

Here would be my answer to that question.

var isPrime = function(n) {
  if(typeof n !== 'number' || n <= 1 || n % 1 !== 0){
    return false;
  }
  for(var i = 2; i <= Math.sqrt(n); i += 1){
    if(n % i === 0){
      return false;
    }
  }
  return true;
};

The first if statement catches the edge cases. The for loop then checks from 2 up to the square root of n because of the mathematical property where no number has both of its factors greater than the square root of that number.

Hope this helps!

This one is I think more efficient to check prime number :

function prime(num){
 if(num == 1) return true;
 var t = num / 2;
 var k = 2;
 while(k <= t) {
   if(num % k == 0) {
      return false
   } else {
   k++;  
  }
 }
  return true;
}
console.log(prime(37))

Simple version:

function isPrime(num) {
    if (num <= 1) { 
        return false;
    } else {
        for (var i = 2; i < num; i++) {
            if (num % i === 0) {
                return false; 
            }
        }
        return true;
    }  
}

console.log(isPrime(9));
  • it is totally wrong if you try with isPrime(9) return true and 9 is not prime! – 3p3ch3 Oct 27 '17 at 1:43
  • you are correct. I meant to place i and not 2 in the if statement num % i === 0 the way it was, it was only dividing by 2 and not by every single number up to the number being evaluated. I just wanted a very simple way for beginners to understand this algorithm I have edited it :) – Andy Oct 27 '17 at 3:19

This is how I'd do it:

function isPrime(num) {
  if(num < 2) return false;
  if(num == 2) return true;
  for(var i = 2; i < num; i++) {
    if(num % i === 0) return false;
  }
  return true;
}

very simple

const isPrime = num => {
  for (var i = 2; i < num; i++) if (num % i == 0) return false;
  return num >= 2; 
}
(function(value){
    var primeArray = [];
    for(var i = 2; i <= value; i++){ 
        if((i === 2) || (i === 3) || (i === 5) || (i === 7)){ 
            primeArray.push(i);
        }
          else if((i % 2 !== 0) && (i % 3 !== 0) && (i % 5 !== 0) && (i % 7 !== 0)){ 
              primeArray.push(i);
          }
        } 
       console.log(primeArray);
}(100));
  • Please explain your answers. As is, this is just a code dump – Sterling Archer Mar 27 at 18:10
function isAPrimeNumber(num){
     var counter = 0;
     //loop will go k equals to $num
     for (k = 1; k <= num; k++) {
      //check if the num is divisible by itself and 1
      // `%` modulus gives the reminder of the value, so if it gives the reminder `0` then it is divisible by the value
       if (num % k == 0) {
         //increment counter value 1
         counter  = counter  + 1;
        }
    }
   //if the value of the `counter is 2` then it is a `prime number`
  //A prime number is exactly divisible by 2 times only (itself and 1)
   if (counter == 2) {
     return num + ' is a Prime Number';
   }else{
    return num + ' is nota Prime Number';
   }
 }

Now call isAPrimeNumber() function by passing a value.

var resp = isAPrimeNumber(5);
console.log(resp);

Output:

5 is a Prime Number
function isPrime(num) {
        if(num < 2) return false;
        for (var i = 2; i <= num/2; i++) {
            if(num%i==0)
                return false;
        }
        return true;
    }

If we want the prime number between two number we have to add this code only

for(var i = 0; i < 100; i++){
        if(isPrime(i))
            console.log(i);
    }

I think this question is lacking a recursive solution:

// Preliminary screen to save our beloved CPUs from unneccessary labour

const isPrime = n => {
  if (n === 2 || n === 3) return true;
  if (n < 2 || n % 2 === 0) return false;

  return isPrimeRecursive(n);
}

// The recursive function itself, tail-call optimized.
// Iterate only over odd divisors (there's no point to iterate over even ones).
 
const isPrimeRecursive = (n, i = 3, limit = Math.floor(Math.sqrt(n))) => {	
  if (n % i === 0) return false;
  if (i >= limit) return true; // Heureka, we have a prime here!
  return isPrimeRecursive(n, i += 2, limit);
}

// Usage example

for (i = 0; i <= 50; i++) {
  console.log(`${i} is ${isPrime(i) ? `a` : `not a` } prime`);
}

This approach have it's downside – since browser engines are (written 11/2018) still not TC optimized, you'd probably get a literal stack overflow error if testing primes in order of tens lower hundreds of millions or higher (may vary, depends on an actual browser and free memory).

This will cover all the possibility of a prime number . (order of the last 3 if statements is important)

   function isPrime(num){  
    if (num==0 || num==1) return false;
    if (num==2 || num==3 ) return true; 
    if (num % Math.sqrt(num)==0 ) return false;
    for (let i=2;i< Math.floor(Math.sqrt(num));i++) if ( num % i==0 ) return false;
    if ((num * num - 1) % 24 == 0) return true;        
   }
  • This code returns 35 is a prime. – Pasha Rumkin Oct 20 '17 at 19:39

Following code uses most efficient way of looping to check if a given number is prime.

function checkPrime(number){    
    if (number==2 || number==3) {
    return true
}
    if(number<2 ||number % 2===0){
        return false
    }
    else{
        for (let index = 3; index <= Math.sqrt(number); index=index+2) {
            if (number%index===0) {
                return false
            }        
        }
    }
    return true
}
  1. First check rules out 2 and lesser numbers and all even numbers
  2. Using Math.sqrt() to minimize the looping count
  3. Incrementing loop counter by 2, skipping all even numbers, further reducing loop count by half

protected by dippas Apr 15 at 14:48

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.