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How do we split a string every 3 characters from back using JavaScript.

str = 9139328238

And after the desired function it would become

parts = ['9','139','328','238']

How to do this elegantly?

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4 Answers 4

var myString = String( 9139328238 );
console.log( myString.split( /(?=(?:...)*$)/ ) );
// ["9", "139", "328", "238"]

I can't make any performance guarantees. For smallish strings it should be fine.

Here's a loop implementation:

function funkyStringSplit( s )
{
    var i = s.length % 3;
    var parts = i ? [ s.substr( 0, i ) ] : [];
    for( ; i < s.length ; i += 3 )
    {
        parts.push( s.substr( i, 3 ) );
    }
    return parts;
}
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7  
You should use a non-capturing group to generate the desired output: /(?=(?:...)*$)/ –  Felix Kling Feb 7 '13 at 13:13
    
How does it matter wether I capture or not? it's splitting, not using captures. –  Alex Feb 7 '13 at 13:18
    
@Ales: Well, ["9", "238", "139", "238", "328", "238", "238"] does not look like the result the OP wants. And it's hard to see how to get from there to what the OP wants. –  Felix Kling Feb 7 '13 at 13:19
1  
I was using a different string in my console... let me edit that... --- turns out I wasn't. Thanks Felix! –  Alex Feb 7 '13 at 13:20
    
Also, you probably want to start the regex with \B in case the number of digits is divisible by three (and use + instead of * for clarity). –  Tim Pietzcker Feb 7 '13 at 13:28

Not as elegant, but shows you a while loop

 function commaSeparateNumber (val) {
    val = val.toString();
    while (/(\d+)(\d{3})/.test(val)){
      val = val.replace(/(\d+)(\d{3})/, '$1'+','+'$2');
    }
    return val;
  }

  var str = "9139328238";
  var splitStr = commaSeparateNumber(str).split(",");
  console.log(splitStr);
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Try this:

var str = 9139328238 + ''; //convert int to string
var reqArr = []; // required array
var len = str.length; //maintaining length
while (len > 0) {
    len -= 3;
    reqArr.unshift(str.slice(len)); //inserting value to required array
    str = str.slice(0, len); //updating string
}

Hope it helps..

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Finally it seems good. This is what I have got till now without using any loops

function breakAt3(x)
    {
            if(x.length < 3){ var parts = [x]; return parts; }
        var startPos = (x.length % 3);
        var newStr = x.substr(startPos); 
        var remainingStr = x.substr(0,startPos); 

        var parts = newStr.match(/.{1,3}/g);
        if(remainingStr != ''){ var length = parts.unshift(remainingStr); }
        return parts;

    }

    var str = '92183213081';  
    var result = breakAt3(str);  // 92,183,213,081 
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Some credit should go to Alex for his quick regex idea! –  winner_joiner Feb 7 '13 at 13:32
    
A +1 for @Alex. He was really quick. –  Ray Z Feb 7 '13 at 13:36
    
this solution doesn't work for strings with length < 3, and returns an additional empty string for strings of length 3. The problem is the match at line 7 can fail. –  Alex Feb 7 '13 at 13:39
    
Just edited my answer. Thanks @alex –  Ray Z Feb 7 '13 at 13:43
    
Now strings with length < 3 don't return an array anymore! There's something wrong with your logic. You're assigning into a new var length and never using it. –  Alex Feb 7 '13 at 13:48

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