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I want to match a portion of a string using a regular expression and then access that parenthesized substring:

var myString = "something format_abc"; // I want "abc"

var arr = /(?:^|\s)format_(.*?)(?:\s|$)/.exec(myString);

console.log(arr);     // Prints: [" format_abc", "abc"] .. so far so good.
console.log(arr[1]);  // Prints: undefined  (???)
console.log(arr[0]);  // Prints: format_undefined (!!!)

What am I doing wrong?


I've discovered that there was nothing wrong with the regular expression code above: the actual string which I was testing against was this:

"date format_%A"

Reporting that "%A" is undefined seems a very strange behaviour, but it is not directly related to this question, so I've opened a new one, Why is a matched substring returning "undefined" in JavaScript?.


The issue was that console.log takes its parameters like a printf statement, and since the string I was logging ("%A") had a special value, it was trying to find the value of the next parameter.

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8 Answers 8

up vote 428 down vote accepted

You can access capturing groups like this:

var myString = "something format_abc";
var myRegexp = /(?:^|\s)format_(.*?)(?:\s|$)/g;
var match = myRegexp.exec(myString);
alert(match[1]);  // abc

And if there are multiple matches you can iterate over them:

match = myRegexp.exec(myString);
while (match != null) {
    // matched text: match[0]
    // match start: match.index
    // capturing group n: match[n]
    match = myRegexp.exec(myString);
}
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19  
+1 Please note that in the second example you should use the RegExp object (not only "/myregexp/"), because it keeps the lastIndex value in the object. Without using the Regexp object it will iterate infinitely –  ianaz Aug 28 '12 at 12:06
2  
@ianaz: I don't believe 'tis true? http://jsfiddle.net/weEg9/ seems to work on Chrome, at least. –  spinningarrow Oct 16 '12 at 7:26
5  
Please fix your second example so that exec is repeatedly executed, not only once. –  Bergi Feb 16 '13 at 16:40
1  
@Bergi, just take a look at my answer instead: stackoverflow.com/a/14210948/96656 –  Mathias Bynens May 11 '13 at 18:46
3  
Why do the above instead of: var match = myString.match(myRegexp); // alert(match[1])? –  JohnAllen Dec 30 '13 at 17:39

Here’s a method you can use to get the n​th capturing group for each match:

function getMatches(string, regex, index) {
    index || (index = 1); // default to the first capturing group
    var matches = [];
    var match;
    while (match = regex.exec(string)) {
        matches.push(match[index]);
    }
    return matches;
}

Example:

var myString = 'something format_abc something format_def something format_ghi';
var myRegEx = /(?:^|\s)format_(.*?)(?:\s|$)/g;

// Get an array containing the first capturing group for every match
var matches = getMatches(myString, myRegEx, 1);
// matches → ['abc', 'def', 'ghi']
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2  
This a far superior answer to the others because it correctly shows iteration over all matches instead of only getting one. –  Rob Evans May 11 '13 at 12:08
2  
Infinite loop, useless. Next time check your code, before posting... –  mnn Jun 19 '13 at 16:55
3  
@mnm In which situation does this cause an infinite loop? The code example I posted seems to work fine — and yes, I did test it. –  Mathias Bynens Jun 19 '13 at 19:09
3  
@mnn Don't forget to add a "g" to the end. –  Berk Demirkır Jul 16 '13 at 12:41
3  
mnn is right. This will produce an infinite loop if the 'g' flag is not present. Be very careful with this function. –  Druska Sep 4 '13 at 18:45
var myString = "something format_abc";
var arr = myString.match(/\bformat_(.*?)\b/);
console.log(arr[0] + " " + arr[1]);

The \b isn't exactly the same thing (works on "--format_foo/", doesn't work on "format_a_b") though... But I wanted to show an alternative to your expression, which is fine. Of course, the match call is the important thing.

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@JellicleCat I just don't understand your comment, as nothing in the thread talks about "global replacements". –  PhiLho Mar 19 '13 at 14:32

Your syntax probably isn't the best to keep. FF/Gecko defines RegExp as an extension of Function.
(FF2 went as far as typeof(/pattern/) == 'function')

It seems this is specific to FF -- IE, Opera, and Chrome all throw exceptions for it.

Instead, use either method previously mentioned by others: RegExp#exec or String#match.
They offer the same results:

var regex = /(?:^|\s)format_(.*?)(?:\s|$)/;
var input = "something format_abc";

regex(input);        //=> [" format_abc", "abc"]
regex.exec(input);   //=> [" format_abc", "abc"]
input.match(regex);  //=> [" format_abc", "abc"]
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+1 for explaining the FF-specific behavior of RegExp. –  Dave Dopson Jan 2 '13 at 19:45

Using your code:

console.log(arr[1]);  // prints: abc
console.log(arr[0]);  // prints:  format_abc

Edit: Safari 3, if it matters.

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A one liner that is practical only if you have a single pair of parenthesis:

while ( ( match = myRegex.exec( myStr ) ) && matches.push( match[1] ) ) {};
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Your code works for me (FF3 on Mac) even if I agree with PhiLo that the regex should probably be:

/\bformat_(.*?)\b/

(But, of course, I'm not sure because I don't know the context of the regex.)

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it's a space-separated list so I figured \s would be fine. strange that that code wasn't working for me (FF3 Vista) –  nickf Jan 11 '09 at 12:04
    
Yes, truly strange. Have you tried it on its own in the Firebug console? From an otherwise empty page I mean. –  PEZ Jan 11 '09 at 12:21

In regards to the multi-match parentheses examples above, I was looking for an answer here after not getting what I wanted from:

var matches = mystring.match(/(?:neededToMatchButNotWantedInResult)(matchWanted)/igm);

After looking at the slightly convoluted function calls with while and .push() above, it dawned on me that the problem can be solved very elegantly with mystring.replace() instead (the replacing is NOT the point, and isn't even done, the CLEAN, built-in recursive function call option for the second parameter is!):

var yourstring = 'something format_abc something format_def something format_ghi';

var matches = [];
yourstring.replace(/format_([^\s]+)/igm, function(m, p1){ matches.push(p1); } );

After this, I don't think I'm ever going to use .match() for hardly anything ever again.

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