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See this java code :-

s = s.replaceAll( "\\\\", "\\\\\\\\" ).replaceAll( "\\$", "\\\\\\$" );

I sorta don't understand it. It's a regex replace all.

I've tried the following C# code...

text = text.RegexReplace("\\\\", "\\\\\\\\");
text = text.RegexReplace("\\$", "\\\\\\$");

But if i have the following unit test :-

} ul[id$=foo] label:hover {

The java code returns: } ul[id\$=foo] label:hover {

My c# code returns: } ul[id\\\$=foo] label:hover {

So i'm not sure I understand why my c# code is putting more \'s in, mainly with regards to how these control characters are being represented.. ??


Update:

So, when i use XXX's idea of just using text.Replace(..), this works. eg.

text = text.Replace("\\\\", "\\\\\\\\");
text = text.Replace("\\$", "\\\\\\$");

But I was hoping to stick with RegEx... to try and keep it as close to the java code as possible.

The extension method being used is...

public static string RegexReplace(this string input, 
    string pattern, 
    string replacement)
{
    return Regex.Replace(input, pattern, replacement);
}

hmm...

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4 Answers 4

up vote 3 down vote accepted

Java needs all $ signs escaped in its replace string - "\\\\\\$" means \\ and \$. Without it it throws an error: http://www.regular-expressions.info/refreplace.html (look for "$ (unescaped dollar as literal text)").

Remember $1, $0 etc are replaced the text with captured groups, so there are a part of the syntax on the second argument to replaceAll. C# has a slightly different syntax, and doesn't require the extra slash, which it takes literally.

You could write:

text = text.RegexReplace(@"\\", @"\\");
text = text.RegexReplace(@"\$", @"\$");

Or,

text = text.RegexReplace(@"[$\\]", @"\$&");
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So both Java and C# need a slash to be escaped. But in Java, they also need $ to be escaped? –  Pure.Krome Nov 29 '10 at 6:35
    
Yes - exactly. :) –  Kobi Nov 29 '10 at 6:37
    
but @Gabe and @CodeCanvas suggest it's not a regex replacement going on? –  Pure.Krome Nov 29 '10 at 6:41
1  
They are both exactly correct - if this isn't a simplified version, you don't need a rexeg here. Also, there is no String.RegexReplace method in C#, unless you're using an extension method. –  Kobi Nov 29 '10 at 6:43
    
@Kobi - yeah, you're right. I just noticed it is an extension method that does Regex.Replace(..). –  Pure.Krome Nov 29 '10 at 6:46
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I think it's the equivalent of this C# code:

text = text.Replace(@"\", @"\\"); 
text = text.Replace("$", @"\$");

The @ indicates a verbatim string in C#, meaning that the backslashes in strings don't have to be escaped with more backslashes. In other words, the code replaces a single backslash with a double backslash and then replaces a dollarsign with a backslash followed by a dollarsign.

If you were to use the regex function, it would be something like this:

text = text.RegexReplace(@"\\", @"\\"); 
text = text.RegexReplace(@"\$", @"\$$");

Note that in the regex pattern (the first parameter), backslashes are special, while in the replacement (the second parameter) it is the dollarsigns that are special.

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so you're saying that Java:"\\\\", "\\\\\\\\" is single backslash getting replaced to a double backslash? i thought that's two blackslashes, to 4. ?? –  Pure.Krome Nov 29 '10 at 6:43
    
Pure.Krome: The Java replaceAll function does a regex replace. Half the backslashes are removed by the Java compiler, then half of the remaining ones are removed by the regex compiler. What's left is the literal. –  Gabe Nov 29 '10 at 6:46
    
@Pure.Krome - no, it's a single backslash. You escape twice: once for the string (so the compiler sees `\`), and again for regex engine - two backslashes in a string is a single backslash match. –  Kobi Nov 29 '10 at 6:47
    
"The @ indicates a literal string in C#..." - the @"" is a verbatim string literal, "" is a string literal. –  Serguei Nov 29 '10 at 6:48
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The code quotes the backslashes and '$' characters in the original string.

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hi dude .. i sorta don't understand your answer. Which code? And i'm doing what? –  Pure.Krome Nov 29 '10 at 6:29
    
basically it replaces a single backslash with 2 backslashes, and replaces '$' with '\$'. It is done for the same reason why we write printf("\\"); to get the output ` -- in this example, ` is a special character to printf, and the way to tell printf that you want a literal ` (instead of the special meaning) is to quote it (and the quoting character is `, hence `\`). –  lijie Nov 29 '10 at 6:53
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Java regex parsing: http://download.oracle.com/javase/1.4.2/docs/api/java/util/regex/Pattern.html

C#: http://msdn.microsoft.com/en-us/library/xwewhkd1.aspx

I think that in Java, you have to escape the \ character by using \, but in C#, you don't. Try taking out half of the \ in your C# version.

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\ needs to be escaped in C# string literals, but not in verbatim sring literals (i.e. string foo = @"\";) –  Serguei Nov 29 '10 at 6:43
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