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I'm rubbish at Regular Expressions, really!

What I'd like is to split a string containing a CSS property value into an array of [string,value,unit].

For example: if I supplied the .split() method with 1px it'd return ["1px",1,"px"]. If I were to supply, similarly, 10% it'd return ["10%",10,"%"].

Can this be done?

I appreciate all your help!

Update: I'd also like it to return ["1.5em",1.5,"em"] if 1.5em were supplied. But, if possible, still return null if supplied yellow. Unfortunately /^([0-9]*\.?[0-9]*)(.*)/ supplied with yellow would return y,,y!

Thanks so far guys!

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Please use backticks to format code, not <code> tags. Here's the complete Markdown reference: stackoverflow.com/editing-help –  Alan Moore May 19 '10 at 22:18

5 Answers 5

up vote 6 down vote accepted

Using capturing groups:

var matches = "100%".match(/^(\d+(?:\.\d+)?)(.*)$/);

You're in luck. match returns an array with the full match on the first position, followed by each group.
split is probably wrong here, since you want to keep the full match. If you wanted to get ['100', '%'], for example, you could have done .split(/\b/).

Updated to enable fractions. Also, the use of both anchors will not match when the format isn't [number][unit], so null is returned.

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This is very nearly there, only it returns <code>["1.5em",1.5,.5,"em"]</code> and <code>["1em",1,,"em"]</code>. –  Jonathon Oates May 19 '10 at 20:34
    
@​​​​​​​​​​​​​​Jay - My bad, should have been a non-capturing group. –  Kobi May 19 '10 at 20:52
    
split(/\b/) is WRONG, it does not split "100%" into ['100', '%] unless there is a space between the two like: "100 %" –  Marco Demaio Oct 11 '10 at 12:27
    
@Marco - Hello! Seems to work well for me: jsfiddle.net/kobi/QftyC . \b matches the boundary between an alphanumeric (0) to a non-alphanumeric (%), so it works perfectly in this case, and should work in all flavors. It will not work well for 1.1 or 1em though, only for 100%. –  Kobi Oct 11 '10 at 12:44
    
I didn't think you wanted to split only '100%', I thought the solution should work also for something like "300px", "1em" etc. –  Marco Demaio Oct 11 '10 at 16:11
"1px".match(/(\d*\.?\d*)(.*)/)

yields

["1px", "1", "px"]

I've updated the expression to match real numbers with leading and trailing decimals.

var expr  = /(\d*\.?\d*)(.*)/,
    cases = [
    "1px",
    "1.px",
    "11.px",
    "11.1px",
    "11.11px",
    "1.11px",
    ".11px",
    ".1px",
    ".px" // Invalid numeric value, but still preserves unit and can be handled as seen below
];

for ( var i=0,l=cases.length; i<l; ++i ) {
    var r = cases[i].match(expr );
    console.log(r, parseFloat(r[1], 10) || 0);
}

Results

["1px", "1", "px"] 1
["1.px", "1.", "px"] 1
["11.px", "11.", "px"] 11
["11.1px", "11.1", "px"] 11.1
["11.11px", "11.11", "px"] 11.11
["1.11px", "1.11", "px"] 1.11
[".11px", ".11", "px"] 0.11
[".1px", ".1", "px"] 0.1
[".px", ".", "px"] 0
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1  
Also, if you want the "1" to be a number, just use var aaa[1] = parseInt(aaa[1],10) –  user216441 May 19 '10 at 20:31
    
parseFloat is actually more appropriate. –  Justin Johnson May 20 '10 at 0:13
    
cool, how about completing expr with plus/minus sign var expr = /^([\+\-]?\d*\.?\d*)(.*)$/ –  Marco Demaio Oct 11 '10 at 16:07

Try:

cssProperty.match(/^([0-9]+\.?[0-9]*)(.*)/);
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As both answers are the same, who do I choose to have the correct answer? Help! –  Jonathon Oates May 19 '10 at 20:09
    
@Justin, as your answer needed to be edited, and Josh's worked right out of the box, I am so sorry, but he has the points! Please forgive me! –  Jonathon Oates May 19 '10 at 20:11
1  
cssProperty.match(/^([0-9]*\.?[0-9]*)(.*)/); will also support 1.5em –  dev-null-dweller May 19 '10 at 20:12
    
@dev: Good point! Answer updated. –  Josh May 19 '10 at 20:14
    
@Jay: Accept whichever one you want. In full disclosure, I edited my answer twice, once to change split to match (you threw me off and I realized 10 second after posting you wanted match :-) and again to incorporate dev-null-dweller's excellent advice. –  Josh May 19 '10 at 20:16

More complicated but will return parsed number and null for some garbage strings

String.prototype.unitSplit = function(parse){
    var retArr = this.toString().match(/^([\d]*\.?[\d]+)([^\d]*)$/);
    if(retArr && parse != undefined)
    {
        retArr[1] = (retArr[1].indexOf('.') >= 0)?parseFloat(retArr[1]):parseInt(retArr[1]);
    }
    return retArr;
}
/* Test cases */
"10px".unitSplit(); //["10px", "10", "px"]
"20%".unitSplit(true); //["20%", 20, "%"]
".8em".unitSplit(true); //[".8em", 0.8, "em"]
"127.0.0.1localhost".unitSplit(true); //null
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Ok you win! :-) –  Josh May 19 '10 at 22:07
    
All numbers in JavaScript are floats, so you might as well just do retArr[1] = parseFloat(retArr[1], 10); (you also need to explicitly include the radix). Also, a little white space in a ternary expression never killed anyone ;) As for your expression, the range operators in your expression are not necessary when you are not negating: it could just be (\d*\.?\d+)([^\d]*). –  Justin Johnson May 20 '10 at 0:16
function mySplit(str)
{
    var regex = /(\d*)([^\d]*)/;
    var t = "$1$2,$1,$2";
    return str.replace(regex,t).split(",");
} 
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This returns a string, the OP needs an array in this case. Also, \D is a handy replacement for [^\d] (there's also \W, etc) –  Kobi May 19 '10 at 20:23
    
@Kobi It would return a string except for the .split(',') I assumed would split it into an array on the ','. I didn't test it thought. oh and thanks for the \D tip! :) –  JD Isaacks May 19 '10 at 20:54

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