7

I want to find /AA/ pattern in AA-AA-AA subject string. I need to get the matching string and the position (index) of the match.

I have looked at RegExp.prototype.exec(). It only returns the first match:

/AA/g.exec('AA-AA-AA')
  • 4
    Introducing jsfiddle.net - a place you can go for all your HTML/CSS/JS demoing needs. – BoltClock May 30 '11 at 15:52
  • is that you want ? rubular.com/r/X9NQ4h1xYH – diEcho May 30 '11 at 15:56
  • not really. my problem is not writing the pattern, but getting the information i need after search was performed - the index values of the results to be exact – yotamoo May 30 '11 at 15:58
18

exec() only returns a single match. To get all matches with a g​lobal regexp, you have to call it repeatedly, eg.:

var match, indexes= [];
while (match= r.exec(value))
    indexes.push([match.index, match.index+match[0].length]);
| improve this answer | |
  • Great. Made me that much wiser – mplungjan May 30 '11 at 16:15
  • 1
    Why not use str.match(regex) instead of regex.exec(str)? – Rudie May 30 '11 at 16:19
  • match() only gives you the matching strings, exec gives you match objects with more information available on them (the matching string can be accessed from them as [0]). If you want the indexes, you need exec. – bobince May 30 '11 at 16:26
  • 2
    @bobince that's not true. Assuming the regex being used is not global, String.prototype.match and RegExp.prototype.exec return the same thing. Tested in chrome, firefox, and ie. Also Ecma-262 suggests that match should use exec internally: bclary.com/2004/11/07/#a-15.5.4.10 – Xavi May 12 '12 at 15:54
  • 1
    developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… if the regular expressioin does not include the g flag, str.match() will return the same result as RegExp.exec() If includes the g flag, str.match() returns an Array containing all matched substrings rather than match objects, Captured groups are not returned – jk2K Sep 21 '18 at 15:20
3

Be careful when using RegExp.prototype.exec() function to match a string. The constructed regex object is stateful, i.e. every time you call .exec() it affects the lastIndex property of the regex instance. Therefore, you should always reset the lastIndex property before using an instance of regex object.

let re,
    findAAs;

re = /AA/;

findAAs = (input) => {
    let match;

    // `re` is cached instance of regex object.
    // Reset `re.lastIndex` every time before using it.

    re.lastIndex = 0;

    while ((match = re.exec(input)) !== null) {
        match.index; // Match index.
        match[0]; // Matching string.
    }
};

A tempting alternative is to construct the regex object on every execution. Depending on how resource intensive your task is, this is an option too.

let findAAs;

findAAs = (input) => {
    let match,
        re;

    re = /AA/;

    while ((match = re.exec(input)) !== null) {
        match.index; // Match index.
        match[0]; // Matching string.
    }
};

A pragmatic alternative to using .exec() is String.prototype.replace().

let findAAs,
    re;

re = /AA/;

findAAs = (input) => {
    let match,
        re;

    input.replace(re, (match, index) => {
        match; // Matching string.
        index; // Match index.

        return '';
    });
};

The downside of this approach is that it constructs a copy of the subject string.

Whether you should use it or not, depends on how resource intensive your task is. Personally, I like to avoid while blocks in my code and therefore prefer the .replace() approach.

| improve this answer | |
  • > The constructed regex object is stateful. .... This is true only if you pass g flag to regex. – Oleh Devua Jul 11 '17 at 10:56
0

http://jsfiddle.net/mplungjan/MNXvQ/

I think this is easier to grasp

var str = "AAbAAcAAd"
var re = /(AA)/gi;
var t="",cnt=0;
while ((result=re.exec(str))!=null) {
    document.write((cnt++)+":"+result[1]+"<br />")        
}

re.lastIndex contains the positions each time

| improve this answer | |

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