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The line

System.out.println("\\");

prints a single back-slash (\). And

System.out.println("\\\\");

prints double back-slashes (\\). Understood!

But why in the following code:

class ReplaceTest
{
    public static void main(String[] args)
    {
        String s = "hello.world";
        s = s.replaceAll("\\.", "\\\\");
        System.out.println(s);
    }
}

is the output:

hello\world

instead of

hello\\world

After all, the replaceAll() method is replacing a dot (\\.) with (\\\\).

Can someone please explain this?

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6 Answers 6

up vote 14 down vote accepted

When replacing characters using regular expressions, you're allowed to use backreferences, such as \1 to replace a using a grouping within the match.

This, however, means that the backslash is a special character, so if you actually won't to use a backslash it needs to be escaped.

Which means it needs to actually be escaped twice when using it in a Java string. (First for the string parser, then for the regex parser.)

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2  
so basically what you are saying is that the string parser will first parse "\\\\" into "\\" which the regex parser will further parse into "\". Is that it?? –  WickeD Jun 2 '12 at 20:41
    
Yes, exactly... –  Reverend Gonzo Jun 2 '12 at 20:44
    
Yeah, I'm a little confused, because in the example in the question, why wouldn't the string parser parse \\. as \. which regex would then parse to .? –  ametren Jun 2 '12 at 20:44
2  
@ametren that's correct. In the first part of the replace, it's really \. since he's escaping the dot since that has a special meaning as well, so that become's just '.' which then gets replaced by the string in the second argument. –  Reverend Gonzo Jun 2 '12 at 20:46
    
Nevermind, just realized that I completely misread the question in the first place. –  ametren Jun 2 '12 at 20:46

The javadoc of replaceAll says:

Note that backslashes ( \ ) and dollar signs ($) in the replacement string may cause the results to be different than if it were being treated as a literal replacement string; see Matcher.replaceAll. Use Matcher.quoteReplacement(java.lang.String) to suppress the special meaning of these characters, if desired.

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1  
+1 for the mention to Matcher.quoteReplacement ! EDIT : remove the code (I do notm anage to indent it with mini-markdown) –  Christophe Blin Oct 2 '13 at 10:14

The backslash is an escape character in Java Strings. e.g. backslash has a predefined meaning in Java. You have to use "\ \" to define a single backslash. If you want to define " \ w" then you must be using "\ \ w" in your regex. If you want to use backslash you as a literal you have to type \ \ \ \ as \ is also a escape character in regular expressions.

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This is a formatted addendum to my comment

s = s.replaceAll("\\.", Matcher.quoteReplacement("\\"));  

IS MORE READABLE AND MEANINGFUL THAN

s = s.replaceAll("\\.", "\\\\\\");
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If you don't need regex for replacing and just need to replace exact strings, escape regex control characters before replace

String trickyString = "$Ha!I'm tricky|.|";
String safeToUseInReplaceAllString = Pattern.quote(trickyString);
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I believe in this particular case it would be easier to use replace instead of replace all. Reverend Gonzo Has the correct answer when he talks about escaping the character.

Using replaceAll:

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

Using replace:

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

replace just takes a string to match to, not a regular expression.

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