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I'm working on a project and one requirement is if the 2nd argument for the main method starts with '/' (for linux) it should consider it as an absolute path (not a problem), but if it doesn't start with '/', it should get the current working path of the class and append to it the given argument.

I can get the class name in several ways: System.getProperty("java.class.path"), new File(".") and getCanonicalPath(), and so on..

The problem is, this only gives me the directory in which the packages are stored - i.e if I have a class stored in ".../project/this/is/package/name", it would only give me "/project/" and ignores the package name where the actual .class files are.

Any suggestions?

EDIT: Here's the explanation, taken from the exercise description

sourcedir can be either absolute (starting with “/”) or relative to where we run the program from

sourcedir is a given argument for the main method. how can I find that path?

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2  
What will you do if the code is packaged in a JAR (or is otherwise not in a folder/file structure like you're assuming)? It's a dangerous assumption; this might work fine for a small experiment, class assignment, or other disposable situation, but PLEASE don't get into the habit of making that assumption for production-quality code. –  E-Riz Mar 15 '12 at 22:56
    
There is no sense in finding the path to the class file. Also the exercise description does not mention that if you read it carefully (where we run the program from means the current path from which the program is called by the user). –  The Nail Mar 15 '12 at 23:15
    
Maybe you could help me to better understand the requirement? I need to check the argument starts with a '/' (mention in the description). if it does, just use it as absolute. as is. but if it doesn't, how should I treat it? –  La bla bla Mar 15 '12 at 23:18

3 Answers 3

up vote 36 down vote accepted

Use this.getClass().getCanonicalName() to get the full class name.

Note that a package / class name ("a.b.C") is different from the path of the .class files (a/b/C.class), and that using the package name / class name to derive a path is typically bad practice. Sets of class files / packages can be in multiple different class paths, which can be directories or jar files.

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thanks, but it's in the main method, and 'this' can't be used in static methods. any work around it? –  La bla bla Mar 15 '12 at 22:41
    
    
edited the question. to better explain –  La bla bla Mar 15 '12 at 23:09

There is a class, Class, that can do this:

Class c = Class.forName("MyClass"); // if you want to specify a class
Class c = this.getClass();          // if you want to use the current class

System.out.println("Package: "+c.getPackage()+"\nClass: "+c.getSimpleName()+"\nFull Identifier: "+c.getName());

If c represented the class MyClass in the package mypackage, the above code would print:

Package: mypackage
Class: MyClass
Full Identifier: mypackage.MyClass

You can take this information and modify it for whatever you need, or go check the API for more information.

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Note that Class.forName("MyClass") will only work if it is in the default package (i.e. has no package declaration). –  The Nail Mar 15 '12 at 22:46
1  
@TheNail true, and getName() returns the package name along with the class name, editing now. –  Jon Mar 15 '12 at 22:47
    
Use getSimpleName() to get only the class name without package name. –  The Nail Mar 15 '12 at 22:48

The fully-qualified name is opbtained as follows:

String fqn = YourClass.class.getName();

But you need to read a classpath resource. So use

InputStream in = YourClass.getResourceAsStream("resource.txt");
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