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Given the following code:

alpha = ('"foo"="bar"').replace(/.*foo...([^"]*).*/, RegExp.$1)
beta = ('"bar"="baz"').replace(/.*bar...([^"]*).*/, RegExp.$1)

The expected output is:

alpha is "bar"
beta is "bar"

The actual output is:

alpha is ""
beta is "bar"

Which led me to this workaround:

('"foo"="bar"').match(/.*foo...([^"]*).*/);
alpha = ('"foo"="bar"').replace(/.*foo...([^"]*).*/, RegExp.$1)

('"bar"="baz"').replace(/.*bar...([^"]*).*/);
beta = ('"foo"="baz"').replace(/.*foo...([^"]*).*/, RegExp.$1)

How do I do this without needing the match to update the backreference?

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2  
How about taking advantage of the fact that inside a replacement string, $1, $2, etc. refer to the match groups? –  Pointy Nov 17 '12 at 23:59
    
Also it would help a lot if you could clarify exactly what you want the result to be from a given input. –  Pointy Nov 17 '12 at 23:59
1  
I tried $1, but it's "$1". So ('"foo"="bar"').replace(/.*foo...([^"]*).*/, "$1") works. Thanks! –  Paul Sweatte Nov 18 '12 at 0:26

1 Answer 1

up vote 1 down vote accepted

you can use either:

// $1 = first backref, $2 = 2nd on through $9
// (*)I'm not sure but I think "$10" gets replaced with "backref1"+"0"
alpha = subject.replace(regex, "$1 $2 ... $N");

*: after a bit of testing, it depends on what's matched. If there is a backref after the 9th, the correct backref will be returned. BUT if the backref doesn't exist, it will preform as stated above: "backref1" + "0"

or:

alpha = subject.replace(regex, function(matchedText, backref1, backref2, ...) {
    return "replacement text";
});



If you are attempting to get an attribute value match:

alpha = '"foo"="bar"'.replace(/"([^"]+)"="([^"]*)"/g, function(matched, attr, value) {
    // matched = "foo"="bar"
    // attr = foo
    // value = bar
});

If this is being done within a browser, to get attributes from elements already on the page, I strongly suggest using built-in DOM manipulation handlers.

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