Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am currently trying to create a happy number checker using a simple for-loop in javascript.

function check(num){
    var sNum = String(num);
    var digits = [];
    while (num !== 1){
        for (var i = 0; i < String(num).length; i++){
            digits.push(sNum.charAt(i));
            digits[i] = Number(digits[i] * digits[i]);          
        }
        num = eval(digits.join('+')) 
        return num;
    }
    alert(num);
}
check(1);

When num receives its value after exiting the loop, how would I re-inject the new value of num back into the for-loop to start the process over again with the new num value. If this can be solved with the current for-loop being wrapped by another loop outside of it, how would the new value of num re-enter? Thank you all!

Edit Here is the updated code where only the number 1 works.

share|improve this question
    
Create a function out of it and call it again with the num as a parameter? –  putvande Jul 6 '14 at 15:01
    
When doing that, would return num; be taken as the new value for the param? –  Jking Jul 6 '14 at 15:05
1  
Avoid using eval in general, there's almost always a better way to do it. Here's one: function sum(numbers) { var result, i; result = 0; for (i = 0; i < numbers.length; i++) { result += numbers[i]; } return result; } –  nyuszika7h Jul 6 '14 at 15:29
    
If you don't need to support older browsers: digits.reduce(function (a, b) { return a + b; }, 0); –  nyuszika7h Jul 6 '14 at 15:35

3 Answers 3

up vote 0 down vote accepted

Checking for a happy number is a lot harder than that. You write a loop that executes until num becomes 1. Well, for unhappy numbers, num will NEVER become 1.

Here is some better code:

function check(num) {
  var sNum,
      digits = [];
  var num;
  while (num !== 1) {
    // Add up all the digits
    sNum = num.toString();
    for (var i = 0; i < sNum.length; ++i) {
      digits.push((+sNum[i]) * (+sNum[i]));
    }
    num = eval(digits.join("+"));
    // If num is 4, then the number will NEVER be happy
    if (num === 4) return false;
    // We must reset digits
    digits = [];
  }
  return true;
}

This is sort of a hack. 4 isn't the only number that isn't happy, but all unhappy numbers will eventually go through the sequence 4, 16, 37, 58, 89, 145, 42, 20... (source: Wikipedia), so I check for 4 (although 20 or 16 would have done just as well).

Also, using eval is considered bad practice. Use a sum function instead like:

function sum(digits) {
  var s = 0;
  for (var i = 0; i < digits.length; ++i) s += digits[i];
  return s;
}

Then you can replace eval(digits.join("+")) with sum(digits).

share|improve this answer

I think this does the trick:

function isHappy(num) {
    if(num === 1) return true;
    if(num === 4) return false;
    return isHappy((num + '').split('').reduce(function(prev, digit) {
        return prev + digit*digit;
    }, 0));
}

Explanation:

  1. First, we check if the number is 1, as a base case to detect happy numbers.
  2. Now, we must have a base case to detect sad numbers.

    According to wikipedia, sad numbers end in the cycle 4, 16, 37, 58, 89, 145, 42, 20, 4, .... So we can check, for example, 4.

    You could also check them all: ~[4, 16, 37, 58, 89, 145, 42, 20].indexOf(num).

  3. Now we do a recursive call to check is the sum of the square of the digits is happy.

    To calculate that sum, we use:

    1. First convert numto string: num + ''
    2. Then split it to an array of digits.
    3. Finally we reduce that array to the sum of squares.
share|improve this answer

You could potentially call the function recursively if a condition is met. For example:

function check(num) {
    // your code, and then...
    if(/* whatever condition */) check(num);
}

To do this, you might need to remove the return num from your original code, or put it at the very end of your function if you still want too eventually return the number.

share|improve this answer
    
Thank you very much. As a kid new to development , this is invaluable, reusable knowledge for which I sincerely thank you. It's there a term for calling a function inside of itself like this? –  Jking Jul 6 '14 at 15:19
1  
Since if a number is not happy, it will end in the cycle 4, 16, 37, 58, 89, 145, 42, 20, 4, ..., wouldn't your code produce an infinite recursion? –  Oriol Jul 6 '14 at 15:22
    
Actually yes, this is just a test scenario for a later project, so calling maximum stack size in the console is what should be achieved for unhappy numbers. –  Jking Jul 6 '14 at 15:28
    
@Oriol, it depends on the condition that he prescribes. I only used num !== 1 as an example. He could instead check, for example, whether the number ends in 4, 16, or whatever, and then call the function recursively. –  Josh Beam Jul 6 '14 at 15:30
    
@Jking, the term for this is called "calling a function recursively". –  Josh Beam Jul 6 '14 at 15:31

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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