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I want to escape all double quotes which are NOT escaped already.

I am using real_escape_string() already, but I wish to understand what is wrong with the follow regular expression/approach:

$str = '"Hello "" """ world!\"';
preg_replace('/(^|[^\\\\]{1})\"/', '${1}\"', $str);

(PS: I know - \\" will NOT be escaped and MIGHT be a problem in some other cases though this doesn't matter to my script.)

The result was:

\"Hello \"" \""\" world!\"

But I wanted it to be:

\"Hello \"\" \"\"\" world!\"
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5  
For an SQL insert you should not, under any circumstances, roll your own escaping. Use parametrized queries instead. –  Waleed Khan Jan 7 '13 at 2:52
    
This is a bad idea, but a quick way you can do this is: 1) Replace all of the escaped quotes with an un-escaped quote, then 2) replace all of the un-escaped quotes with an escaped one: str_replace( array( '\"', '"'), array( '"', '\"'), $str); –  nickb Jan 7 '13 at 2:55
    
@WaleedKhan : Thanks for your advice and usually I don't. Though in this case the ONLY character which could mess anything up are double quotes - looked for a quick solution. –  Prince Cherusker Jan 7 '13 at 2:57
2  
even if you're using deprecated methods such as mysql_*, there is still mysql_real_escape_string which does that job. –  Fabrício Matté Jan 7 '13 at 2:58
1  
@PrinceCherusker a quick fix like this, leads to getting quickly hacked. –  cryptic ツ Jan 7 '13 at 3:01

2 Answers 2

up vote 2 down vote accepted

I think you're on the right track, but you're missing two key elements. The first is that you have to include the quote in the negated character class along with the backslash: [^"\\]*. When that part runs out of things to match, the next character (if there is one) must be a quote or a backslash.

If it's a backslash, \\. consumes it and the next character, whatever it is. It might be a quote, a backslash, or anything else; you don't care because you know it's been escaped. Then you go back to gobbling up non-special characters with [^"\\]*.

The other missing element is \G. It anchors the first match to the beginning of the string, just like \A. Each match after that has to start where the previous match ended. This way, when the final " in the regex comes into play, you know that every character before it has been examined, and you are indeed matching an unescaped quote.

$str = '"Hello "" """ world!\"';
$str = preg_replace('/\G([^"\\\\]*(?:\\\\.[^"\\\\]*)*)"/', '$1\"', $str);
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Thanks! It worked! :) Honestly I really have to read your description a few more times before I ABSOLUTELY get it - that's exactly what I was looking for! Thanks again! :) –  Prince Cherusker Jan 7 '13 at 13:29

Here is how you escape your sql:

$str = mysql_real_escape_string($str);

or:

$str = mysqli_real_escape_string($str);

or

$str = *_real_escape_string($str);
// * is your db extention 

Or you can use PDO to parametrize your input.

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Or "best" - placeholders! (But if escaping is required for other reasons, this is far better: +1) –  user166390 Jan 7 '13 at 2:59
    
Thanks - though I'm not looking for a solution about escaping strings for SQL (using the mysqli solution btw) but rather for an answer what's wrong about my regex! :) –  Prince Cherusker Jan 7 '13 at 3:04
    
@PrinceCherusker, but you shouldn't use regexes because that's always wrong. –  Tyler Crompton Jan 7 '13 at 3:08
1  
"I wish to understand what is wrong with the follow regular expression/approach". He might have used the SQL merely as a context example. Saying "it's not a good idea" and elaborate on alternarives is like refusing to answer his question IMO. –  caiosm1005 Jan 7 '13 at 3:17
1  
I mean I guess you could, but it's not really a regular language, so it shouldn't be done with regular expressions. But if it is still desired despite the nonsemanticness and the abundance of warnings, one could do use /(?<!\\)(?:\\\\)*"/g. The non-capturing group part would have to remain the same so that the correct number of backslashes are used; otherwise, the number of backslashes would be reduced by 50%. –  Tyler Crompton Jan 7 '13 at 6:05

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