Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'd like to access the classname of the underlying class which is an instance of java.lang.reflect.Proxy.

Is this possible?

share|improve this question
    
Probably what you really want is the class name of the InvocationHandler, not the Proxy. –  finnw Jul 27 '10 at 13:59

5 Answers 5

up vote 6 down vote accepted

You can get the InvocationHandler with which the proxy was created, by calling Proxy.getInvocationHandler(proxy)

Note that in the case of java.lang.reflect.Proxy there is no underlying class per se. The proxy is defined by:

  • interface(s)
  • invocation handler

And the wrapped class is usually passed to the concrete invocation handler.

share|improve this answer
    
Thanks. What does the invocation handler get me? I've got a proxy but i want the classname of the object that is implementing the interface the proxy is built from. I'm thinking it's not possible ... –  blank Jul 27 '10 at 14:05
    
There is no object other than the proxy object. The invocation handler is responsible for dispatching the call –  Bozho Jul 27 '10 at 14:10

Well a Proxy instance won't be an instance of java.lang.reflect.Proxy per se. Rather, it will be an instance of a subclass of java.lang.reflect.Proxy.

Anyway, the way to get the actual proxy classes name is:

Proxy proxy = ...
System.err.println("Proxy class name is " + proxy.getClass().getCanonicalName());

However, you cannot get the name of the class that the Proxy is a proxy for, because:

  1. you proxy interfaces not classes, and
  2. a Proxy can be a proxy for multiple interfaces

However, from looking at the source code of the ProxyGenerator class, it seems that the interfaces are recorded in the generated proxy class as the interfaces of the class. So you should be able to get them at runtime via the proxy classes Class object; e.g.

Class<?>[] classes = proxy.getClass().getInterfaces();

(Note: I've not tried this ...)

share|improve this answer
    
proxy.getClass().getInterfaces() works perfect! –  StrikeW Jan 9 at 14:29

I find good for me solution on http://www.techper.net/2009/06/05/how-to-acess-target-object-behind-a-spring-proxy/

@SuppressWarnings({"unchecked"})
protected <T> T getTargetObject(Object proxy, Class<T> targetClass) throws Exception {
  if (AopUtils.isJdkDynamicProxy(proxy)) {
    return (T) ((Advised)proxy).getTargetSource().getTarget();
  } else {
    return (T) proxy; // expected to be cglib proxy then, which is simply a specialized class
  }
}

Usage

@Override
protected void onSetUp() throws Exception {
  getTargetObject(fooBean, FooBeanImpl.class).setBarRepository(new MyStubBarRepository());
}
share|improve this answer

Here was the solution we used with my team (we need the name of the class behind the proxy) :

if (getTargetName(yourBean) ... ) {

}

With this little helper :

private String getTargetName(final Object target) {

    if (target == null) {
        return "";
    }

    if (targetClassIsProxied(target)) {

        Advised advised = (Advised) target;

        try {

            return advised.getTargetSource().getTarget().getClass().getCanonicalName();
        } catch (Exception e) {

            return "";
        }
    }

    return target.getClass().getCanonicalName();
}

private boolean targetClassIsProxied(final Object target) {

    return target.getClass().getCanonicalName().contains("$Proxy");
}

Hope it helps!

share|improve this answer

You can use the following code for retrieve the info (ArrayUtils is from Apache commons lang) about invocation handler and the interfaces of the current proxy:

String.format("[ProxyInvocationHandler: %s, Interfaces: %s]", 
     Proxy.getInvocationHandler(proxy).getClass().getSimpleName(), 
     ArrayUtils.toString(proxy.getClass().getInterfaces()));

Example result:

[ProxyInvocationHandler: ExecuteProxyChain, Interfaces: {interface com.example.api.CustomerApi}]}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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