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I'm trying to replace all instances of [1] (including the brackets), but instead of replacing all instances of [1], it's replacing all instances of 1.

var index = 'abc123'
var regexp = new RegExp('[' + index + ']', 'g');
var new_id = new Date().getTime();

$(this).html().replace(regexp,'['+new_id+']')
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escape the specials, bro. [] is a range selector, like [a-z] – vol7ron Jul 6 '11 at 3:12
up vote 2 down vote accepted

You need to escape the brackets with \\ characters.

Since you're writing a Javascript string literal, you need to write \\ to create a single backslash for the regex escape.

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I tried escaping the brackets, but it still replaces all instances of the index variable...brackets or not. – Shpigford Jul 6 '11 at 3:05
    
You also need to escape the \​s from the JS string literal. I edited my answer. – SLaks Jul 6 '11 at 3:05
    
Ah there we go. Didn't realize I needed the double slash. Works now. Thanks! – Shpigford Jul 6 '11 at 3:08

Try escaping the brackets

var regexp = new RegExp('\\[' + index + '\\]', 'g');
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I tried escaping the brackets, but it still replaces all instances of the index variable...brackets or not. – Shpigford Jul 6 '11 at 3:05
    
From the other answer I see the back slashes also need to be escaped. Good catch, SLaks. Just verified that double escaping works in jsfiddle. – bbg Jul 6 '11 at 3:12

[] is special in a regex. It defines a character class. For example:

/[a-z]/

matches any letter, a through z. Or:

/[123abc]/

matches 1, 2, 3, a, b, or c.

So your regex:

/[1]/

Means to match any character of 1.

What you need to do is escape the [ and ] like so:

/\[1\]/

Or specifically in your code:

$(this).html().replace(regexp,'\['+new_id+'\]')
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Try this:

var index = 'abc123'
var regexp = new RegExp('\\[' + index + '\\]', 'g');
var new_id = new Date().getTime();

$(this).html().replace(regexp,new_id)

I changed the last line of your code because it did change all [1]'s just added the brackets back in the replace function. And also escape your brackets

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