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I am trying to understand how Regex handles searching for literals of special characters. This is the simplest example I can think of to illustrate my question.

I am searching for a literal . in a string
When I do

 'sp.o'.search('.')
 //it returns 0 which makes sense.

Then I read the MDN and according to them

 'sp.o'.search('\.')
 // it returns 0 !
 // I come from vim flavor regex
 // It does not make sense to me =(

https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/RegExp

 'sp.o'.search('\\.')
 // returns 2 !
 // the correct out put I am looking for

What the heck am I missing ! ( This behavior is both in Google Chrome and NodeJS I have not tried any where else! )

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Why use regex to search for simple literals? .indexOf() is much less expensive. –  Jonathan M Feb 10 '12 at 21:26
    
I am asking about REGEX. I think my title confused people. I just gave the simplest example of the issue. –  James Andino Feb 10 '12 at 21:46
    
Every ones complaint is fair enough. I cleared up my question sry. –  James Andino Feb 10 '12 at 21:48
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5 Answers

up vote 4 down vote accepted

Because its a string, the \ means you want to escape the next character. but . isn't a special string character so it just treats it as a literal.

"\." === "." 

You want to escape the slash (\) not the period, which is why "\\." produces the literal string \. which is what you want. Or more explicity:

"\\" + "." === "\\." // or a literal: \.

But the other posts are correct, you probably just want to use a Regex literal, rather than parsing a string as a regex.

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You are not using regular expressions but strings. Use:

/regexphere/

It works:

'sp.o'.search(/\./); // 2

But in your case, .indexOf is your friend:

'sp.o'.indexOf('.'); // 2
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Strings can be used, they are just converted to a RegExp. –  benekastah Feb 10 '12 at 18:36
    
@benekastah: I just noticed that. Wouldn't advise to use it, though. –  pimvdb Feb 10 '12 at 18:38
    
is that safe across a majority of platforms? –  James Andino Feb 10 '12 at 18:38
    
@pimvdb True. Your .indexOf suggestion is better. +1 –  benekastah Feb 10 '12 at 18:39
    
@James Andino: For strings, indexOf is widely supported as far as I know. This is not the case for array's indexOf, though. –  pimvdb Feb 10 '12 at 18:53
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Your usage is almost correct. As others noted, you can use regular expression literals instead of strings. But strings also work. According to the Mozilla docs on the search method:

If a non-RegExp object obj is passed, it is implicitly converted to a RegExp by using new RegExp(obj).

The reason '\\.' works and '\.' does not is because in a javascript string you must escape the backslash for it to be a backslash. Otherwise it will always try to escape the character in front of it. In this case, '.' doesn't escape to anything. If you evaluate your strings in a javascript console, you will get this:

'\.' // => '.'
'\\.' // => '\.'

The string will then be passed to the RegExp object behind the scenes. If you do this yourself, this is what you'd get:

new RegExp('\.') // => /./
new RegExp('\\.') // => /\./

Other people suggested using the regex literal (e.g. /\./) instead of a string as the argument to .search. Both work, but I would use the regex literal because it is more obvious and a little prettier.

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If you're just searching for a fixed literal, why not just use:

if( 'sp.o'.indexOf('.') !== -1) ...

Regex is always more expensive than a string search.

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You are searching with a string, not an expression. Try this:

'sp.o'.search(/\./); // should return 2
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