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Why do javascript sub-matches stop working when the g modifier is set?

var text = 'test test test test';

var result = text.match(/t(e)(s)t/);
// result: ["test", "e", "s"]

the above works fine... [1] is e and [2] is s... perfect

var result = text.match(/t(e)(s)t/g);
// ["test", "test", "test", "test"]

the above ignores my sub-matches

var result = text.match(/test/g);
for (var i in result) {
    console.log(result[i].match(/t(e)(s)t/));
}
/*
["test", "e", "s"]
["test", "e", "s"]
["test", "e", "s"]
["test", "e", "s"]
*/

is the above the only valid solution?


solution:

thanks to htw the proper way to do this would be the following:

var text = 'test test test test',
    pattern = new RegExp(/t(e)(s)t/g),
    match;

while (match = pattern.exec(text)) {
    console.log(match);
}

RegExp.prototype.lastIndex manipulation

RegExp.prototype.exec and RegExp.prototype.test execute the regular expression on the provided string and return the first result. Every sequential call will step through the result set updating RegExp.prototype.lastIndex based on the current position in the string so be careful.

heres an example

// remember there are 4 matches in the example and pattern.lastIndex starts at 0

pattern.test(text); // pattern.lastIndex = 4
pattern.test(text); // pattern.lastIndex = 9
pattern.exec(text); // pattern.lastIndex = 14
pattern.exec(text); // pattern.lastIndex = 19

// if we were to call pattern.exec(text) again it would return false and reset the pattern.lastIndex to 0
while (match = pattern.exec(text)) {
    // never gets ran because we already traversed the string
    console.log(match);
}

pattern.test(text); // pattern.lastIndex = 4
pattern.test(text); // pattern.lastIndex = 9

// however we can reset the lastIndex and it will give us the ability to traverse the string from the start or any specific position in the string
pattern.lastIndex = 0;

while (match = pattern.exec(text)) {
    // outputs all of the matches
    console.log(match);
}
share|improve this question

1 Answer 1

up vote 53 down vote accepted

Using String's match() function won't return captured groups if the global modifier is set, as you found out.

In this case, you would want to use a RegExp object and call its exec() function. String's match() is almost identical to RegExp's exec() function…except in cases like these. If the global modifier is set, the normal match() function won't return captured groups, while RegExp's exec() function will. (Noted here, among other places.)

Another catch to remember is that exec() doesn't return the matches in one big array—it keeps returning matches until it runs out, in which case it returns null.

So, for example, you could do something like this:

var pattern = /t(e)(s)t/g;  // Alternatively, "new RegExp('t(e)(s)t', 'g');"
var match;    

while (match = pattern.exec(text))
{
    // Do something with the match (["test", "e", "s"]) here...
}

You can find information on how to use RegExp objects on W3Schools (specifically, here's the documentation for the exec() function).

share|improve this answer
2  
using exec doesn't seem to listen to the g modifier, but it supports sub-matches/groups. So the result would be the first match (it basically ignores the g modifier) –  Chad Scira May 9 '09 at 21:03
    
Added a clarification about that—you have to call exec() repeatedly to get the multiple matches. –  htw May 9 '09 at 21:05
2  
Not the most elegant solution. i was expecting an output somewhat like this: [ ["test", "e", "s"], ["test", "e", "s"], ["test", "e", "s"], ["test", "e", "s"] ] –  Chad Scira May 9 '09 at 21:13
    
htw: good clarification. One little nit-pick: you don't really need to pass the regex literal through new RegExp(). –  Shog9 May 9 '09 at 21:13
1  
Note for others bumping into another problem: If you use .test() before it, make sure you reset the lastIndex using pattern.lastIndex = 0 before the while loop to get all the matches –  Iulian Onofrei Apr 10 at 8:33

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