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Good day,

Is there a Regex that I could use to prepend a 0 before any number that is below 10?

I am not looking for a date parsing library, ternary or if/else solutions. (hopefully)

var currentDate = new Date(),
    stringDate = currentDate.getFullYear() + "-" + currentDate.getMonth() + "-" + currentDate.getDate() + " " + currentDate.getHours() + ":" + currentDate.getMinutes() + ":" + currentDate.getSeconds();

    alert( stringDate ); //2011-10-17 10:3:7

I would like a RegExp that I could apply to stringDate to get 2011-10-17 10:03:07

Thank you very much!

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2  
don't forget to add 1 to month –  Jonas H Nov 17 '11 at 15:56
    
@Jonas H, +1 I haven't even noticed that. Weird Date object. –  Cybrix Nov 17 '11 at 16:06

9 Answers 9

up vote 37 down vote accepted

Just add the leading 0 every time, then use slice(-2) to get the last two characters, like so:

('0' + currentDate.getHours()).slice(-2)
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That is not a regex solution but it's working! And it's much cleaner then a ternary solution. –  Cybrix Nov 17 '11 at 15:37
1  
great workaround! –  bitsMix Nov 17 '11 at 15:46
    
@Cybrix You should accept the answer. –  FailedDev Nov 17 '11 at 16:15
    
This is great and it's also easily customizable for use with any number of leading zeros (or any other character for that matter). Thank you. –  Zabri Sep 12 at 10:58

The following function will allow you to declare a minimum length for a number along or within a string and will pad it with zeros to make it the appropriate length.

var PrependZeros = function (str, len, seperator) {
    if(typeof str === 'number' || Number(str)){
        str = str.toString();
        return (len - str.length > 0) ? new Array(len + 1 - str.length).join('0') + str: str;
    }
    else{
        for(var i = 0,spl = str.split(seperator || ' '); i < spl.length; spl[i] = (Number(spl[i])&& spl[i].length < len)?PrependZeros(spl[i],len):spl[i],str = (i == spl.length -1)?spl.join(seperator || ' '):str,i++);
        return str;
    }
};

For those wanting a less cryptic version

var PrependZeros = function (str, len, seperator) {
    if (typeof str === 'number' || Number(str)) {
        str = str.toString();
        return (len - str.length > 0) ? new Array(len + 1 - str.length).join('0') + str : str;
    }
    else {
        var spl = str.split(seperator || ' ')
        for (var i = 0 ; i < spl.length; i++) {
            if (Number(spl[i]) && spl[i].length < len) {
                spl[i] = PrependZeros(spl[i], len)
            }
        }
        return spl.join(seperator || ' ');
    }
};

Examples:

PrependZeros("1:2:3",2,":"); // "01:02:03"
PrependZeros(1,2); // "01"
PrependZeros(123,2); // "123"
PrependZeros("1 2 3",3); // "001 002 003" 
PrependZeros("5-10-2012",2,"-"); //"05-10-2012"
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I have to downvote you for that evil, evil, evil for loop. –  samspot Jul 22 at 14:07
1  
I updated my response to have a version without the evil evil loop... I rarely write code that cryptic. –  Davan Etelamaki Oct 17 at 18:45

You don't need regex for that. You can make a simple pad function yourself:

function pad(n) {
    if (n < 10)
        return "0" + n;
    return n;
}

alert(pad(8));
alert(pad(11));

http://jsfiddle.net/DwnNG/

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How about:

x.replace(/^(\d)$/, "0$1");
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'2011-10-17 10:3:7'.replace(/^(\d)$/, "0$1") == '2011-10-17 10:03:07' –  Cybrix Nov 17 '11 at 15:52
    
It's not working with my test. –  Cybrix Nov 17 '11 at 15:52
    
@Cybrix: change x by currentDate.getHours() and so on –  M42 Nov 17 '11 at 15:57

That should do the work (it has an ternary operator in it, but also an regex^^)

stringDate.replace(/\d+/g, function(m) {
    return parseInt(m, 10) < 10 ? "0" + m : m;
});
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Are you ready for your one-liner do-it-all regex solution?

Pass in your entire string... and this will match single-digits and pad them with a 0.

"2011-10-17 10:3:7"
.replace(/(^|[^0-9])([0-9])(?=($|[^0-9]))/ig, function ($0, $1) { 
   return $0[0] + '0' + $0[1]; 
});

//returns "2011-10-17 10:03:07"

This would be made so much easier if JavaScript supported lookbehind-assertions.

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I prefer Alex's way, but if you really want the regex way, you can try:

   "2011-10-10 10:2:27".replace(/:(?=[^0](?::|$))/g, ":0");
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That almost works. Working with numbers below 10 but otherwise: 2011-10-17 10:049:037 –  Cybrix Nov 17 '11 at 15:50
    
@Cybrix how about the new one? –  bitsMix Nov 17 '11 at 16:15

%0{length} => %05 => 1=00001, 2=00002,... 55=00055,...

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I now this is old, but I just saw this simple and clean solution used on the w3c and just had to share it somewhere.

var hours = currentDate.getHours();
(hours < 10 ? '0' : '') + hours;
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