208

Does anyone know how to programmaticly find out where the java classloader actually loads the class from?

I often work on large projects where the classpath gets very long and manual searching is not really an option. I recently had a problem where the classloader was loading an incorrect version of a class because it was on the classpath in two different places.

So how can I get the classloader to tell me where on disk the actual class file is coming from?

Edit: What about if the classloader actually fails to load the class due to a version mismatch (or something else), is there anyway we could find out what file its trying to read before it reads it?

0

11 Answers 11

206

Here's an example:

package foo;

public class Test
{
    public static void main(String[] args)
    {
        ClassLoader loader = Test.class.getClassLoader();
        System.out.println(loader.getResource("foo/Test.class"));
    }
}

This printed out:

file:/C:/Users/Jon/Test/foo/Test.class
9
  • 41
    To cut down on redundant typing, one can also use the shorter version: Test.class.getResource("Test.class"), which doesn't repeat the package name.
    – meriton
    Feb 1, 2013 at 16:42
  • 1
    What if the class is compiled, e.g. from a .groovy file? Jun 28, 2013 at 0:58
  • 38
    @meriton: Or, to survive refactorinsgs: Test.class.getResource(Test.class.getSimpleName() + ".class")
    – leonbloy
    Jul 21, 2013 at 16:50
  • 1
    For BouncyCastleProvider full package name is required however. Nov 7, 2013 at 13:34
  • 3
    It is possible for getClassLoader() to return null. See here for an extension to this method to handle that. Jan 4, 2014 at 10:47
109

Another way to find out where a class is loaded from (without manipulating the source) is to start the Java VM with the option: -verbose:class

2
  • 6
    this worked very well, and doesn't have the problem of dealing with classes with null ClassLoader Sep 9, 2011 at 11:58
  • 2
    @ries If one doesn't need to do this programmatically, this is definitely the way to go, and it did solve my problem. However, the OP had asked specifically how to do this programmatically. Feb 17, 2017 at 16:09
96
getClass().getProtectionDomain().getCodeSource().getLocation();
4
  • 4
    Yup, although it doesn't work with a security manager installed and without the required permissions. Oct 23, 2008 at 13:35
  • 1
    FYI, NPE = Null Pointer Exception. HTH! Nov 19, 2015 at 9:40
  • This method is preferred as long as you have a reference to an instance, since you can load the same class from two different locations. Jul 24, 2017 at 10:04
  • 2
    Also doesn't work when called from a Java 9+ module (which of course you couldn't have known in 2008).
    – Jeff G
    Sep 30, 2018 at 20:40
29

This is what we use:

public static String getClassResource(Class<?> klass) {
  return klass.getClassLoader().getResource(
     klass.getName().replace('.', '/') + ".class").toString();
}

This will work depending on the ClassLoader implementation: getClass().getProtectionDomain().getCodeSource().getLocation()

20

Jon's version fails when the object's ClassLoader is registered as null which seems to imply that it was loaded by the Boot ClassLoader.

This method deals with that issue:

public static String whereFrom(Object o) {
  if ( o == null ) {
    return null;
  }
  Class<?> c = o.getClass();
  ClassLoader loader = c.getClassLoader();
  if ( loader == null ) {
    // Try the bootstrap classloader - obtained from the ultimate parent of the System Class Loader.
    loader = ClassLoader.getSystemClassLoader();
    while ( loader != null && loader.getParent() != null ) {
      loader = loader.getParent();
    }
  }
  if (loader != null) {
    String name = c.getCanonicalName();
    URL resource = loader.getResource(name.replace(".", "/") + ".class");
    if ( resource != null ) {
      return resource.toString();
    }
  }
  return "Unknown";
}
5

Edit just 1st line: Main.class

Class<?> c = Main.class;
String path = c.getResource(c.getSimpleName() + ".class").getPath().replace(c.getSimpleName() + ".class", "");

System.out.println(path);

Output:

/C:/Users/Test/bin/

Maybe bad style but works fine!

3

Typically, we don't what to use hardcoding. We can get className first, and then use ClassLoader to get the class URL.

        String className = MyClass.class.getName().replace(".", "/")+".class";
        URL classUrl  = MyClass.class.getClassLoader().getResource(className);
        String fullPath = classUrl==null ? null : classUrl.getPath();
2
  • Needs to be: URL classUrl = MyClass.class.getClassLoader().getResource("/" + className); Jan 6, 2020 at 15:04
  • MyClass.class is important part - getClass() can return Proxy! Then you can get name like MyClass$$EnhancerBySpringCGLIB$$a98db882.class, and null URL.
    – jalmasi
    Feb 13, 2020 at 15:33
1

Take a look at this similar question. Tool to discover same class..

I think the most relevant obstacle is if you have a custom classloader ( loading from a db or ldap )

1

Simple way:

System.out.println(java.lang.String.class.getResource(String.class.getSimpleName()+".class"));

Out Example:

jar:file:/D:/Java/jdk1.8/jre/lib/rt.jar!/java/lang/String.class

Or

String obj = "simple test"; System.out.println(obj.getClass().getResource(obj.getClass().getSimpleName()+".class"));

Out Example:

jar:file:/D:/Java/jdk1.8/jre/lib/rt.jar!/java/lang/String.class

0

This approach works for both files and jars:

Class clazz = Class.forName(nameOfClassYouWant);

URL resourceUrl = clazz.getResource("/" + clazz.getCanonicalName().replace(".", "/") + ".class");
InputStream classStream = resourceUrl.openStream(); // load the bytecode, if you wish
-1

Assuming that you're working with a class named MyClass, the following should work:

MyClass.class.getClassLoader();

Whether or not you can get the on-disk location of the .class file is dependent on the classloader itself. For example, if you're using something like BCEL, a certain class may not even have an on-disk representation.

2
  • This returns the ClassLoader used for loading the class, isn't it? It does not find where the .class file is? Sep 26, 2014 at 5:46
  • 1
    No it doesn't. The classloader can actually reffer to completely different class path - means it will be totally unable to reah the actual class location. Mar 7, 2015 at 18:16

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.