Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I basically want to parse a string such as:

"#FFFFFF"   to "#FFFFFF",
"##FFFFFF"  to "#FFFFFF",
"FFFFFF"    to "#FFFFFF"

I'm having issues making a generic regex expression that will handle cases like this. Any help would be appreciated.

share|improve this question
wow - so many insanely complex solutions to this... – Code Jockey Aug 10 '12 at 18:46

8 Answers 8

up vote 3 down vote accepted
var str =  '###FFFF';
str = str.replace (/^#*/, '#')

Replaces 0 or more occurrences of # at the start of the string with a single #

share|improve this answer

You will want to match any number of # OR then anything in the beginning. Like so (see jsFiddle):

new RegExp("(^#+|^)");

// #Test -> #Test
// ####Test -> #Test
// Test -> #Test
share|improve this answer
Just FYI, you don't need the "g" modifier. – Alan Moore Aug 10 '12 at 18:51
True, there should only ever be one of these since he wants it starting at the beginning of the string. I'm fixing the code. – Hexxagonal Aug 10 '12 at 19:22

Another solution to add to the mix that checks for a 3-6 letter hex code with or without a leading #.

var re = /#?([A-F0-9]{3,6})/i;
function getHex (str){
   var val = str.match(re)
   return val ? "#" + val[1] : null;

console.log( getHex( "#FFFFFF" ) ); 
console.log( getHex( "##FFFFFF" ) );
console.log( getHex( "FFFFFF" ) );
share|improve this answer
function formatThing(string){
    return "#" + string.replace(/#/g,"");

Replace all '#' with nothing, and stick a '#' on the front. In my opinion this is more readable than any convoluted regex. It works for all three of the inputs provided, as well as a few other odd cases.

Mind you, this is for converting as your question suggested you wanted, not matching. Better if you're trying to normalize different inputs, in that X to Y sense you wrote in the question. Taking "##FFFFFF" and matching all except the first "#", or refusing to match "FFFFFF" because it lacks a leading "#" wouldn't suffice here right off the bat.

share|improve this answer

I would replace any (or none) of the # characters at the beginning with a single instance of #:

resultString = sourceString.replace(/^#*/, "#");
share|improve this answer

This will not validate that the string is in fact a valid color, but just enforce that the string has exactly one hash as the first character (by stripping all hashes from the string no matter where they are and then adding one at the front):

var colorString = "##ffffff";

console.log("#" + colorString.replace(/#/g, "")); // prints #ffffff
share|improve this answer
var string = "#fffff";
string = string.replace(/#*/g, function(m, i){ return !i?"#":"";});
share|improve this answer
function callback? REALLY? – Code Jockey Aug 10 '12 at 18:51

You want something like /^[#][^#]*$/

share|improve this answer

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.