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I want to match a regex like /(a).(b)(c.)d/ with "aabccde", and get the following information back:

"a" at index = 0
"b" at index = 2
"cc" at index = 3

How can I do this? String.match returns list of matches and index of the start of the complete match, not index of every capture.

Edit: A test case which wouldn't work with plain indexOf

regex: /(a).(.)/
string: "aaa"
expected result: "a" at 0, "a" at 2

Note: The question is similar to Javascript Regex: How to find index of each subexpression?, but I cannot modify the regex to make every subexpression a capturing group.

share|improve this question
    
All of your subexpressions are already within capturing groups. –  Asad Apr 10 '13 at 19:11
    
@Asad, where? 2 letters are not within capturing groups. –  user1527166 Apr 10 '13 at 19:12
    
If you use global matching, you can get repetitive cases of the captured groups. In that case you need to use the callback function, like shown in the link your have in your question. –  Allendar Apr 10 '13 at 19:13
    
@canon please check my edit for a simple test case which won't work with that. –  user1527166 Apr 10 '13 at 19:16
1  
There doesn't seem to be any function that returns this information. However, I rarely see any usage for getting the index of the match, maybe except for the case where you want to write a regex tester. –  nhahtdh Apr 10 '13 at 20:03

3 Answers 3

So, you have a text and a regular expression:

txt = "aabccde";
re = /(a).(b)(c.)d/;

The first step is to get the list of all substrings that match the regular expression:

subs = re.exec(txt);

Then, you can do a simple search on the text for each substring. You will have to keep in a variable the position of the last substring. I've named this variable cursor.

var cursor = subs.index;
for (var i = 1; i < subs.length; i++){
    sub = subs[i];
    index = txt.indexOf(sub, cursor);
    cursor = index + sub.length;


    console.log(sub + ' at index ' + index);
}

EDIT: Thanks to @nhahtdh, I've improved the mecanism and made a complete function:

String.prototype.matchIndex = function(re){
    var res  = [];
    var subs = this.match(re);

    for (var cursor = subs.index, l = subs.length, i = 1; i < l; i++){
        var index = cursor;

        if (i+1 !== l && subs[i] !== subs[i+1]) {
            nextIndex = this.indexOf(subs[i+1], cursor);
            while (true) {
                currentIndex = this.indexOf(subs[i], index);
                if (currentIndex !== -1 && currentIndex <= nextIndex)
                    index = currentIndex + 1;
                else
                    break;
            }
            index--;
        } else {
            index = this.indexOf(subs[i], cursor);
        }
        cursor = index + subs[i].length;

        res.push([subs[i], index]);
    }
    return res;
}


console.log("aabccde".matchIndex(/(a).(b)(c.)d/));
// [ [ 'a', 1 ], [ 'b', 2 ], [ 'cc', 3 ] ]

console.log("aaa".matchIndex(/(a).(.)/));
// [ [ 'a', 0 ], [ 'a', 1 ] ] <-- problem here

console.log("bababaaaaa".matchIndex(/(ba)+.(a*)/));
// [ [ 'ba', 4 ], [ 'aaa', 6 ] ]
share|improve this answer
1  
This is definitely not the solution for general case. e.g. text = "babaaaaa" and re = /(ba)+.(a*)/ –  nhahtdh Apr 15 '13 at 0:04
    
With your example I get, ba at index 0 aaa at index 3. What is the expected result? –  mquandalle Apr 15 '13 at 0:12
1  
ba should be at index 2, and aaa should be at index 5. baba will be matched by (ba)+, but since the captured part is repeated, only the last instance is captured, and therefore index 2 (it doesn't really matter in this case, but it matters when input is "bbbaba" and regex is /(b+a)+/). aaa is at index 5, because babaa is matched by (ba)+. and the rest aaa are matched by (a*). –  nhahtdh Apr 15 '13 at 0:43
    
re = /((ba))+.(a*)/ it works when the regex capture ba twice. –  mquandalle Apr 15 '13 at 0:57
    
The point is not modifying the regex to make your solution looks good. The point is make your solution consistent with what the engine actually does inside. It is pretty clear that your solution may or may not work depending on the regex, so one more example doesn't amount to anything. –  nhahtdh Apr 15 '13 at 0:58

I wrote an object for this a while ago (https://github.com/dlsloan/MultiRegExp) as long as you don't have nested capture groups it should do the trick. It works by inserting capture groups between those in your reg exp and using all the intermediate groups to calculate the requested group positions.

var exp = new MultiRegExp(/(a).(b)(c.)d/);

exp.exec("aabccde");

should return

{0: {index:0, text:'a'}, 1: {index:2, text:'b'}, 2: {index:3, text:'cc'}}

share|improve this answer

I'm not exactly sure exactly what your requirements are for your search, but here's how you could get the desired output in your first example using Regex.exec() and a while-loop.

JavaScript

var myRe = /^a|b|c./g;
var str = "aabccde";
var myArray;
while ((myArray = myRe.exec(str)) !== null)
{
  var msg = '"' + myArray[0] + '" ';
  msg += "at index = " + (myRe.lastIndex - myArray[0].length);
  console.log(msg);
}

Output

"a" at index = 0
"b" at index = 2
"cc" at index = 3

Using the lastIndex property, you can subtract the length of the currently matched string to obtain the starting index.

share|improve this answer
    
This is a totally wrong approach. Take the input "baaccde" for example. It does not match OP's original regex, but your regex will match it. –  nhahtdh Apr 15 '13 at 3:27
    
To be honest, the example is completely contrived. All it basically asks for is given the string: "aabccde", what are the the indices of the first "a", "b" and "cc"? This answer is merely to show a way to get the indices of the matches. You could easily check to make sure that the string matches before getting the indices, but I'll try improve my answer. –  thgaskell Apr 15 '13 at 3:41
    
Take a look at OP's second test case. –  nhahtdh Apr 15 '13 at 4:23

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