5

I'm having trouble forming a regular expression that can strips out leading zeros from numbers represented as strings. Sorry but parseFloat isn't what I'm looking for since I'll be dealing with numbers with 30+ decimal places.

My current regular expression is

/(?!-)?(0+)/;

Here are my test cases. http://jsfiddle.net/j9mxd/1/

$(function() {
    var r = function(val){
        var re = /(?!-)?(0+)/;
        return val.toString().replace( re, '');
    };
    test("positive", function() {
        equal( r("000.01"), "0.01" );
        equal( r("00.1"), "0.1" );
        equal( r("010.01"), "10.01" );
        equal( r("0010"), "10" );
        equal( r("0010.0"), "10.0" );
        equal( r("10010.0"), "10010.0" );
    });
    test("negative", function() {
        equal( r("-000.01"), "-0.01" );
        equal( r("-00.1"), "-0.1" );
        equal( r("-010.01"), "-10.01" );
        equal( r("-0010"), "-10" );
        equal( r("-0010.0"), "-10.0" );
        equal( r("-10010.0"), "-10010.0" );        
    });
});

Why are my test cases not passing?

  • Please provide some insight in what is actually going wrong, and asking an actual question may not hurt either. – Maarten Bodewes May 16 '12 at 20:44
  • The question is "why aren't my tests passing?" – Larry Battle May 16 '12 at 20:59
  • All of them? OK... – Maarten Bodewes May 16 '12 at 21:01
4

This finishes all your cases

var re = /^(-)?0+(?=\d)/;
return val.toString().replace( re, '$1');

^ matches on the start of the string.

(-)? matches an optional - this will be reinserted in the replacement string.

(0+)(?=\d) matches a series of 0 with a digit following. The (?=\d) is a lookahead assertion, it does not match but ensure that a digit is following the leading zeros.

  • What does ?= mean? – Larry Battle May 16 '12 at 20:53
  • @LarryBattle I added an explanation – stema May 16 '12 at 20:56
2

This passes your tests, and is relatively easy to read:

var r = function(val){
    var re = /^(-?)(0+)(0\.|[1-9])/;
    return val.toString().replace( re, '$1$3');
};
  • Very cleaver using of the back-references. – Larry Battle May 16 '12 at 20:57
  • a lookahead is a better solution - I would have edited the answer but stema proposed it first. – AD7six May 16 '12 at 21:39
1

You could use the following:

var r = function(val) {
    var re = /(-)?0*(\d.*)/;
    var matches = val.toString().match(re);
    return (matches[1] || '') + matches[2];
};

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