65

Suggest solution for removing or truncating leading zeros from number(any string) by javascript,jquery.

  • 4
    what should happen when string is "000000000" – robert Nov 26 '11 at 5:16
  • Is the number expected to be an integer always, or it should handle numbers with decimals (e.g. '00000.5')? – CMS Nov 26 '11 at 5:30
  • it should give work for any string given. i.e. "00000evsdd" should give "evsdd", "00000.5" should give ".5" – Somnath Muluk Nov 30 '11 at 5:19

12 Answers 12

154

You can use a regular expression that matches zeroes at the beginning of the string:

s = s.replace(/^0+/, '');
  • 10
    @SomnathMuluk: that'll be a surprise to a lot of javascript programmers! – Bert Nov 26 '11 at 5:35
  • @Guffa:I am using it in jquery code..may be because of that it might not working. – Somnath Muluk Nov 26 '11 at 5:44
  • 2
    @Somnath, jQuery IS javascript. If something works in javascript it will continue to work if you happen to be using jQuery as well. – Abe Miessler Nov 26 '11 at 5:55
  • 5
    Why the downvote? If you don't explain what you think is wrong, it can't improve the answer. – Guffa Mar 1 '12 at 10:28
  • 2
    s = s.replace(/^0+/, '') will convert "00" to in "" (empty string instead of string with one zero in), which in most cases is undesirable, better encapsulate it in a function and add the line: if (s == "") s = "0"; – Oliver Konig Mar 2 '15 at 6:12
24

I would use the Number() function:

var str = "00001";
str = Number(str).toString();
>> "1"

Or I would multiply my string by 1

var str = "00000000002346301625363";
str = (str * 1).toString();
>> "2346301625363"
  • 2
    it will not work with value bigger than 2^53. Number("009007199254740993").toString() will be "9007199254740992" – madreason Apr 20 '17 at 11:54
  • 2
    perfect answer!!! try to add some more explanation :) – SagarPPanchal Oct 31 '17 at 13:57
11

Maybe a little late, but I want to add my 2 cents.

if your string ALWAYS represents a number, with possible leading zeros, you can simply cast the string to a number by using the '+' operator.

e.g.

x= "00005";
alert(typeof x); //"string"
alert(x);// "00005"

x = +x ; //or x= +"00005"; //do NOT confuse with x+=x, which will only concatenate the value
alert(typeof x); //number , voila!
alert(x); // 5 (as number)

if your string doesn't represent a number and you only need to remove the 0's use the other solutions, but if you only need them as number, this is the shortest way.

and FYI you can do the opposite, force numbers to act as strings if you concatenate an empty string to them, like:

x = 5;
alert(typeof x); //number
x = x+"";
alert(typeof x); //string

hope it helps somebody

  • 1
    mind telling why this was downvoted? – DiegoDD Apr 3 '14 at 23:30
  • it will not work with value bigger than 2^53. (+"009007199254740993").toString() will be "9007199254740992" – madreason Apr 20 '17 at 11:53
11

Since you said "any string", I'm assuming this is a string you want to handle, too.

"00012  34 0000432    0035"

So, regex is the way to go:

var trimmed = s.replace(/\b0+/g, "");

And this will prevent loss of a "000000" value.

var trimmed = s.replace(/\b(0(?!\b))+/g, "")

You can see a working example here

  • 2
    +1, excellent answer – Abe Miessler Nov 26 '11 at 5:57
3

I got this solution for truncating leading zeros(number or any string) in javascript:

<script language="JavaScript" type="text/javascript">
<!--
function trimNumber(s) {
  while (s.substr(0,1) == '0' && s.length>1) { s = s.substr(1,9999); }
  return s;
}

var s1 = '00123';
var s2 = '000assa';
var s3 = 'assa34300';
var s4 = 'ssa';
var s5 = '121212000';

alert(s1 + '=' + trimNumber(s1));
alert(s2 + '=' + trimNumber(s2));
alert(s3 + '=' + trimNumber(s3));
alert(s4 + '=' + trimNumber(s4));
alert(s5 + '=' + trimNumber(s5));
// end hiding contents -->
</script>
  • 4
    That's not very good code. The check for the string length is totally superflous, it will never be evaluated to false. The use of 9999 as the second parameter to substr is not needed. Just use while (s.substr(0,1) == '0') s = s.substr(1);. Besides, that code snippet looks really old, the language attribute of the script tag has been deprecated for a long time, and using comments inside script tags is only needed for browsers that doesn't understand the script tag at all, e.g. Internet Explorer 1.0. – Guffa Mar 1 '12 at 10:38
  • It is working fine for me.... – Avinash Mar 8 '12 at 13:53
3
parseInt(value) or parseFloat(value)

This will work nicely.

  • Not for decimals though – sburke0708 Dec 16 '18 at 16:41
2

Try this,

   function ltrim(str, chars) {
        chars = chars || "\\s";
        return str.replace(new RegExp("^[" + chars + "]+", "g"), "");
    }

    var str =ltrim("01545878","0");

More here

  • it is having problem for string value given – Somnath Muluk Nov 26 '11 at 5:31
  • @SomnathMuluk:what problem. here is the working example jsfiddle.net/AxeUU – Gowri Nov 26 '11 at 5:33
2

Simply try to multiply by one as following:

"00123" * 1;              // Get as number
"00123" * 1 + "";       // Get as string

1

You should use the "radix" parameter of the "parseInt" function : https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Global_Objects/parseInt?redirectlocale=en-US&redirectslug=JavaScript%2FReference%2FGlobal_Objects%2FparseInt

parseInt('015', 10) => 15

if you don't use it, some javascript engine might use it as an octal parseInt('015') => 0

1

If number is int use

"" + parseInt(str)

If the number is float use

"" + parseFloat(str)
0

One another way without regex:

function trimLeadingZerosSubstr(str) {
    var xLastChr = str.length - 1, xChrIdx = 0;
    while (str[xChrIdx] === "0" && xChrIdx < xLastChr) {
        xChrIdx++;
    }
    return xChrIdx > 0 ? str.substr(xChrIdx) : str;
}

With short string it will be more faster than regex (jsperf)

0
const input = '0093';
const match = input.match(/^(0+)(\d+)$/);
const result = match && match[2] || input;

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