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This simple regex program

import java.util.regex.*;
class Regex {
    public static void main(String [] args) {
        System.out.println(args[0]); // #1
        Pattern p = Pattern.compile(args[0]); // #2
        Matcher m = p.matcher(args[1]);
        boolean b = false;
        while(b = m.find()) {
            System.out.println(m.start()+" "+m.group());
        }
    }
}

invoked by java regex "\d" "sfdd1" compiles and runs fine.

But if #1 is replaced by Pattern p = Pattern.compile("\d");, it gives compiler error saying illegal escape character. In #1 I also tried printing the pattern specified in the command line arguments. It prints \d, which means it is just getting replaced by \d in #2.

So then why won't it throw any exception? At the end it's string argument that Pattern.compile() is taking, doesn't it detect illegal escape character then? Can someone please explain why is this behaviour?

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1  
try this Pattern p = Pattern.compile("\\d"); –  DJ Quimby Sep 24 '12 at 21:36
    
I know it works, that's not what my question is about –  Shades88 Sep 24 '12 at 21:38
    
Representing \d in Java code has to be done with \\d the \ character is treated as an escape character in Java code. See this question. –  Brian Sep 24 '12 at 21:39

4 Answers 4

up vote 3 down vote accepted

A backslash character in a string literal needs to be escaped (preceded by a backslash). When passed in from the command line the string is not a string literal. The compiler complains because "\d" is not a valid escape sequence (see Escape Sequences for Character and String Literals ).

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so jvm automatically converts \d into a \\d ? –  Shades88 Sep 24 '12 at 21:46
    
and even if on command line it's not a string literal. the SOP shows it as \d so it must be getting replaced as it is. When does that conversion happen? –  Shades88 Sep 24 '12 at 21:46
    
@Shades88, it will just create a String containing "\d" the same as new String("\\d") would. You don't to escape it on the command line, only within a string literal. –  hmjd Sep 24 '12 at 21:47
1  
@Shades88 It's more appropriate to say that \\d gets properly converted to \d when it's actually passed to Pattern.compile (as opposed to the other way around) –  Brian Sep 24 '12 at 21:47

The \ character is used as an escape character for both Java string literals and regular expressions. This confuses many programmers. When you want to create a String in Java to represent a regular expression that has an escape character then you need to escape the Java escape character.

When passing the string in on the command line the JVM handles this for you and simply creates the String.

What you want is this

Pattern p = Pattern.compile("\\d");
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even if on command line it's not a string literal. the SOP shows it as \d so it must be getting replaced as it is. Also compile method accepts a string, so it's as good as Pattern.compile("\d"). When does \d to \\d conversion happen? –  Shades88 Sep 24 '12 at 21:48
1  
I don't think it converts it from \d to \\d rather in the Java code the \\d represents the character sequence \d. –  km1 Sep 24 '12 at 21:51

The backslash \ in Java results in an escape in strings. For example, the string "\t" results in a tab character in java. This is also why "\n" produces a newline.

In regular expressions, \d is an escape with respect to the regular expression, not Java. This means in order to get \d in a string literal, you have to type "\\d" in the string. Basically, you have to escape the \ to get the literal value \d, and then when Pattern compiles the regex, it further escapes the \d to be parsed as a digit.

This can be confusing, but long story short, you should never have a single \ in a string literal for a regular expression since even the string literal "\\n" gets parsed properly.

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I'm not entirely sure if I understand the question, but it seems like your problem is that you're treating "\d" as a Java escape character, which doesn't exist. To treat it as a regex escape character, use "\d" to escape the Java escape.

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