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I want to match a sequence of initials, the whole sequence, which the second regex in the following example does for me correctly. Why is it that I need the "global" flag? The first should also match ONLY the string in its entirety, right? (because of the ^ and the $)

abc = "A.B.C."
abc.match(/^([A-Z]\.)+$/) // result: ["A.B.C.", "C."]
abc.match(/^([A-Z]\.)+$/g) // result: ["A.B.C."]

thanks!

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3  
This probably has something to do with the capturing group. –  Second Rikudo May 30 '12 at 15:51
2  
It because of the () and the +. –  gdoron May 30 '12 at 15:51
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3 Answers

up vote 3 down vote accepted

Because the parens do not include the +. So when you do abc.match(/^([A-Z]\.)+$/), the parens match only the first [A-Z]\..

To get the match you want, you don't need the g flag. Just use match[0] as your result.

var result = abc.match(/^([A-Z]\.)+$/)
if (result) {
    var fullMatch = result[0];
}

Working demo here: http://jsfiddle.net/jfriend00/PXF6U/

See Bergi's answer for details on why the g flag changes the response like you observed.

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ok, I can see how that works (result[0]), I still don't understand how "C." can be among the matching strings when it doesn't make up the whole string, which ^ and $ should enforce. Seeing as I'm using ^ and $ there should only be at most one match. –  pancake May 30 '12 at 16:00
    
WAIT, I just figured out that the parens generate submatches, I just wanted to group the [A-Z] and the \. together, not also match just that, how do I do that? –  pancake May 30 '12 at 16:01
    
"C." is a component match that corresponds to what your parents matched. Every matching piece in parens comes back in the array. The whole match is in result[0]. The other component matches that were delineated with parens are in result[1], result[2], etc... –  jfriend00 May 30 '12 at 16:01
    
@pancake - use the code I've given you. You need a submatch to make your + operator work properly. Just ignore result[1] and use result[0]. –  jfriend00 May 30 '12 at 16:02
    
AHA, DUH, of course!!!! thank you very much! It's exactly like \0, \1, \2 in VIM, I do not know how I could have misunderstood this.. thanks again! –  pancake May 30 '12 at 16:04
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See the docs for the .match() method:

If the regular expression does not include the g flag, returns the same result as regexp.exec(string).

This is your "unexpected result". See its description: It will return an Array with capturing groups, the matched string, the index of the matching etc. The "C." you get as the second array item is the last capture of the ([A-Z]\.) expression. Yet, it did match only the whole string once.

If the regular expression includes the g flag, the method returns an Array containing all matches. If there were no matches, the method returns null.

The array of "all matches" will have only one item, since you match ^...$.

So, regardless which regexp you will use, the code should be:

var result = abc.match(regex);
if (result) // != null
    return result[0];
else
    // no match found
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If you apply a quantifier (in this case +) to a capturing subpattern (([A-Z]\.)) then only the last instance of that repeated subpattern is captured (because it is index 1 of the result array, and it is overwritten every time a new ones is found).

If you want to get the individual matches, try:

abc.match(/[A-Z]\./g);

This will give you:

["A.","B.","C."]
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Thank you for this answer, this also enhances my knowledge of js regex behavior. –  pancake May 30 '12 at 16:06
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