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I have a string: " \" ". I would like to escape all unescaped double-quotes, i.e. add a backslash before " if it's note there.

input = '" \\" "'
input.replace(???) == '\\" \\" \\"'

I've tried

input.replace(/(?!\\)"/g, '\\"')

It escapes second backslash twice ('\" \\" \"') for the reason I don't understand.

I've figured out

(' ' + input).replace(/([^\\])"/g, '$1\\"').slice(1)

But it looks ugly. It has to be a better way.


Update:

One more test case:

>> input = '" \\" \\\\" \\\\\\"'
-> '" \" \\" \\\"'
>> input.replace(???)
-> '\" \" \\\" \\\"'

None of my regular expressions can handle it.

share|improve this question
    
JS doesn't support lookbehinds, but I'm trying to emulate them. [^\] doesn't compile (throws SyntaxError). –  NVI Sep 12 '11 at 0:15
    
Ah sorry, I guess, it's me who got confused then ;) Right, \ is also the escape characters inside an expression. My apologies... deleted my comment as it does not make sense at all... –  Felix Kling Sep 12 '11 at 0:16
    
Anyways, the backslash is escaped because although \" does not match, " does. As your expression is not anchored, every position/character is tried to match. –  Felix Kling Sep 12 '11 at 0:22

3 Answers 3

What I have is scarcely better, but it does handle escaped backslashes too:

>>> var v= 'a\\"b'
>>> v
"a\"b"
>>> v.replace(/(\\*)(")/g, function(x) { var l = x.length; return (l % 2) ? x : x.substring(0,l-1) + '\\"' } )
"a\\"b"
>>> var v= 'a\\\\"b'
>>> v
"a\\"b"
>>> v.replace(/(\\*)(")/g, function(x) { var l = x.length; return (l % 2) ? x : x.substring(0,l-1) + '\\"' } )
"a\\"b"

If there are an odd number of slashes before a quote (1, 3, 5), the quote is already escaped; an even number (including zero), in needs escaping.

Made all the harder to read by the necessary of escaping the slashes in input and by the inability of the colorizer to understand the regexp expression...

Of course, you probably shouldn't even be doing this. If you have a raw string and you need something you can pass to (e.g.) eval, consider $.toJSON.

share|improve this answer
1  
+1 for considering the number of backslashes. –  Felix Kling Sep 12 '11 at 0:15
    
It should be function(x, y) {var l = y.length;. –  NVI Sep 12 '11 at 0:36
    
No, it should be function(all, backslashes, quote) {return backslashes.length % 2 ? all : backslashes + '\\' + quote}. Thanks for the tip anyway. –  NVI Sep 12 '11 at 1:10

This worked for me:

var arf = input.replace(/(^|[^\\])"/g, '$1\\"');

It says, replace a quote, when preceded by beginning-of-string or anything-other-than-backslash, with backslash followed by quote.

share|improve this answer
    
It does what I originally asked, but it doesn't handle the test case that I just added. –  NVI Sep 12 '11 at 1:29
2  
It answers your question, exactly, so you changed the question. I get it. –  Cheeso Sep 12 '11 at 3:03
String(str).replace(/[\\"']/g, "\\$&")
   .replace(/[\r\n\u2028\u2029]/g,
   function (x) {
     switch (x) {
     case '\n': return "\\n";
     case '\r': return "\\r";
     case '\u2028': return "\\u2028";
     case '\u2029': return "\\u2029";
     }
   })

The String call ensures that the input is a valid string.

The first replace will handle quotes and backslashes. The second handles embedded line terminators.

If you want to deal with an already quoted string, you can change the first replace to this:

'"' + String(str).replace(/^"|"$/g, "").replace(/[\\"]/g, "\\$&") + '"'

to unquote and requote.

share|improve this answer
    
Taken original input, your code produces '\" \\\" \"' instead of '\" \" \"'. –  NVI Sep 12 '11 at 0:50

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