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I am looking for a JavaScript regex which will escape single quotes but it should not escape single quotes which are already escaped.

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3  
Why? – outis Jan 16 '12 at 0:07
    
If the single quote is JS escaped then as far as JS is concerned it will be just a single quote. – Quentin Jan 16 '12 at 0:08

Ideally, you want every match to start exactly where the previous match ended. Otherwise it's too easy to get out of sync with the escape sequences. @outis's regex comes close, but it fails to escape the second single-quote in '\\'. After the first match, it has to match at least one non-backslash and one single-quote, which it can't do. If there are any more characters, it skips ahead and starts matching after the second single-quote.

Try this one instead:

result = subject.replace(/([^'\\]*(?:\\.[^'\\]*)*)'/g, "$1\\'");

This is an example of Friedl's "unrolled loop" pattern:

normal * (special normal *) *

[^'\\]* it the "normal *" part; it gobbles up any number of characters other than single-quotes or backslashes. If the next character is a backslash, \\. ("special") consumes that and the next character (backslash, single-quote, or whatever) and [^'\\]* takes over again. Repeat as needed.

The key point is that the regex never skips ahead and it never backtracks. If it sees a backslash, it always consumes that and the next character, so it never gets out of sync.

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Did you ever know that you're my hero? That you're the wind beneath my wings? – SoreThumb Sep 25 '13 at 23:07

If there are an even number of backslashes, they only quote each other. Thus a character is quoted if it has an odd number of preceding backslashes. Since JS doesn't support lookbehind, you'll need to capture the leading non-backslash and include it in the replacement.

var escquote = /((^|[^\\])(\\\\)*)'/g
"a ' b \' c \\' d".replace(escquote, "$1\\'")

However, if this is for any sort of security purposes, it's the wrong approach for a number of reasons. Firstly, if you're doing this client side, it isn't secure. Second, quoting should be handled when data is sent to a subsystem using the methods provided by the subsystem. For example, if the data is going to a relational database, you should use prepared statements and parameterize the varying data. Prepared statement parameters aren't vulnerale to injection.

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Clean solution. (I just learned a new trick - thanks!) +1 – ridgerunner Jan 16 '12 at 2:48
2  
This fails on '\\'; see my answer. – Alan Moore Jan 16 '12 at 4:43

You can write:

var escaped = original.replace(/\\['\\]|'/g, function (s) {
    if (s == "'") return "\\'";
    else return s;
});

If there's a contiguous sequence of escaped-escapes, it skips them all. If at the end there's a "\'", then the quote is already escaped and is also skipped. If at the end there's a "'", the quote is escaped.

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1  
"\\\'"‌‌‌‌‌‌‌‌‌‌‌‌ – outis Jan 16 '12 at 0:21
    
@outis: I don't know what you mean; my code supports that case. – ruakh Jan 16 '12 at 0:29
    
@Downvoter: care to explain why? (Unless you were the downvoter, outis, in which case -- care to test the code?) – ruakh Jan 16 '12 at 0:29
    
I did test it, but I must have made a mistake on the test and it returned the wrong result. Edited & upvoted. – outis Jan 16 '12 at 0:44

Here's a solution

/[^\\]\'|^\'/g
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What if the original string is \\'? Then the single-quote is preceded by a backslash, but not already escaped. – ruakh Jan 16 '12 at 0:09
1  
"\\\\'"​​​​​​​​​ – outis Jan 16 '12 at 0:09

something like s/(?<!\\)'/\\'/g, using a negative lookbehind to "look back and not see a literal backslash" ?

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1  
"\\\\'", and JS doesn't support lookbehind. – outis Jan 16 '12 at 0:22

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