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Why does it happen that a command line argument passed to a Java class seems to be automagically escaped while in an instantiated String object the escape character () is seemingly ignored.

For example, if start with a string like this:

SELECT * FROM my_table WHERE my_col like 'ABC_\' ESCAPE '\'

And I try running it through a simple class like this:

public class EscapeTest {
    public static void main (String[] args) {
        String str = "SELECT * FROM my_table WHERE " 
                     + "my_col like 'ABC_\' ESCAPE '\'";
        System.out.println("ARGS[0]: "+args[0]);
        System.out.println("STR: "+str);
}
}

and I pass the "SELECT" statement above in as a command line arg, I get output that looks like this:

ARGS[0]: SELECT * FROM my_table WHERE my_col like 'ABC_\' ESCAPE '\'

STR: SELECT * FROM my_table WHERE my_col like 'ABC_' ESCAPE ''

If I look at the value of ARGS[0] in the Eclipse debugger I see that the slashes are escaped. Why does this happen? Makes it kind of hard to predict I think.

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1 Answer 1

up vote 2 down vote accepted

The contents of your string str does not contain any backslashes. Those are being handled by the Java compiler understanding the escape sequences of Java string literals.

The command line processor presumably isn't doing that - it's not treating backslash specially in any way, although this will depend on your shell. (In most Unix shells it would treat backslash differently. My guess is that you're on Windows.)

So, your command line argument does have backslashes in. They haven't been escaped by the executing Java process - they're just "there" in the string.

Now it sounds like the debugger is escaping the string when it's displaying it to you, so that you can see things like tabs and newlines. It's important to understand that this is just the way the debugger displays the string - there's no such thing as an "escape" within a Java string itself.

EDIT: As per comment:

To express this string in Java source code, you have to escape the backslashes:

String str = "SELECT * FROM my_table WHERE my_col like 'ABC_\\' ESCAPE '\\'"; 

Backslashes have to be escaped as backslash is the escape character in Java string literals.

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To perhaps clarify your correct answer: to express this string in Java source code, you indeed have to write: String str = "SELECT * FROM my_table WHERE my_col like 'ABC_\\' ESCAPE '\\'"; Backslashes must be escaped since they are the escape character in a Java source String literal. –  Sean Owen Jul 22 '11 at 19:45
    
I'm actually running this on a Mac, so effectively Unix. Running inside Eclipse and from and terminal (unix CLI) produce the same result. I understand about escaping the escape character in he String instantiation in the Java source, I was just attempting to show a one-to-one comparison. –  slowtrailrunner Jul 22 '11 at 20:13
    
@Sean: Done, thanks. –  Jon Skeet Jul 22 '11 at 20:31
    
@Jason: If you're running in the terminal, I would expect the shell to be handling treating the backslash as an escape character. Could you show your exact command-line? (Running inside Eclipse I can understand being somewhat different.) –  Jon Skeet Jul 22 '11 at 20:32
    
@Jon: Here is my exact command line: java org.jason.string.EscapeTest "SELECT * FROM my_table WHERE my_col like 'ABC_\' ESCAPE '\'" –  slowtrailrunner Jul 22 '11 at 20:59

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