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Escape string for use in Javascript regex

I'm having difficulty scanning for the special character "[". After looking around, I've tried:

var regEx = new RegExp(someValue + "[\x5B]");  // "5B" is the hex-value for "["

(I DO want case-sensitivity and I ONLY want the first occurrence so I intentionally didn't add any modifiers.)

I have been looking and looking, and I still have no idea what I'm doing wrong. If this is a bone-headed question, I'm sorry, but I'm new to JavaScript, and I'm still learning all the ins and outs.

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marked as duplicate by casperOne Mar 2 '12 at 17:38

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
It works for me: RegExp("[\x5B]").test("[") yields true. –  Gumbo Apr 10 '11 at 15:49
    
Thank you everyone for the quick answers, I truly appreciate it. However, to whom ever cast the down vote, thanks for having patience with a newbie; I'm only trying to learn. –  Zak Apr 10 '11 at 16:11
1  
Regexes are fun! But I would strongly recommend spending an hour or two studying the basics. For starters, you need to learn which characters are special: "metacharacters" that need to be escaped (and the rules are different inside and outside character classes.) There is an excellent online tutorial at: www.regular-expressions.info. The time you spend there will pay for itself many times over. Happy regexing! –  ridgerunner Apr 10 '11 at 16:49
    
I've saved it in my bookmarks! Thanks for the advice, I bumped up your comment. Cheers! –  Zak Apr 10 '11 at 16:57

5 Answers 5

up vote 1 down vote accepted
var regEx = new RegExp(someValue + "\\[");

You simply have to escape it with a backslash. The backslash is double because it is a javascript special character as well.

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You're right, this is perfect! I was trying to use RegExp.lastIndex(), which does not work without the "g" modifier. It was, in essence, turned off, and I was trying to use it to tell me if my search had a result. Thank you, –  Zak Apr 10 '11 at 16:42

Should be fine, if you just escape the character:

new RegExp(someValue + "\\[");

You need two backslashes because the backslash is the escape character for strings too. So \\[ will result in the string \[ which is what we need.

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Thank you, this is a perfect explanation. I selected the other answer because it popped up first, but I gave you an up vote for the amazing help! Thanks, –  Zak Apr 10 '11 at 16:40

I think all you need is /[/ for your expression to find the first occurrence of "["

If there's something more complicated you're looking for, check out this tool: http://www.gskinner.com/RegExr/

It's a life-saver for creating regular expressions.

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My JavaScript console refuses /[/ as an invalid regular expression. –  R. Martinho Fernandes Apr 10 '11 at 15:53
    
[ is a special character. –  Lightness Races in Orbit Apr 10 '11 at 15:55

Both the regex .\[ and .[\x5B] match the sub-string "e[" from the text:

"some[text"

as you can see yourself:


http://ideone.com/iR78l

var text = "some[text";
print(text.match(/.\[/));

and http://ideone.com/qvsCz

var text = "some[text";
print(text.match(/.[\x5B]/));
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function escapeRegExp(str) {
  return str.replace(/[-\[\]\/\{\}\(\)\*\+\?\.\\\^\$\|]/g, "\\$&");
}

var re = new RegExp(escapeRegExp(str));   

See: Escape string for use in Javascript regex

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