3

I have a string with the following format: '01/02/2016' and I am trying to get rid of the leading zeros so that at the end I get '1/2/2016' with regex.

Tried '01/02/2016'.replace(/^0|[^\/]0./, ''); so far, but it only gives me 1/02/2016

Any help is appreciated.

  • 1
    not complete duplicate and don't flag Remove leading zeroes in datestring – Mahi Dec 20 '16 at 15:50
  • 1
    Apart from missing g flag, the ^ doesn't mean "start of" when used inside []. – Álvaro González Dec 20 '16 at 15:54
  • You could replace [^\/] with \/, but mbomb007's answer is better as it supports any separator, not just "/". ;-) – RobG Dec 20 '16 at 20:33
7

Replace \b0 with empty string. \b represents the border between a word character and a non-word character. In your case, \b0 will match a leading zero.

var d = '01/02/2016'.replace(/\b0/g, '');
console.log(d);

3

You can use String.prototype.replace() and regular expression to replace the zero at the binning and the zero before / like this:

var d = '01/02/2016'.replace(/(^|\/)0+/g, '$1');
console.log(d);

  • 1
    also just realized I can use moment for that since I already have a dependency in my project moment('01/02/2016').format('l') – inside Dec 20 '16 at 15:59
  • Yep, if you are already are using the library Moment that is a good answer!! – Yosvel Quintero Dec 20 '16 at 16:01
  • I am actually trying to find what 'l' is stands for, would you know by any chance? can't find in moment docs – inside Dec 20 '16 at 16:03

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