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 run my application using mvn jetty:run

At compile time everything is fine, my row

  Tidy tidier = new Tidy();
    tidier.setInputEncoding("UTF-8");

compiles fine and the classpath shows the appropriate jar. However, at runtime I get the following exception and I cannot undestand why:

2009-11-11 17:48:53.384::WARN:  Error starting handlers
java.lang.NoSuchMethodError: org.w3c.tidy.Tidy.setInputEncoding(Ljava/lang/String;)V

I am now thinking maybe there are two different versions of this Tidy in my classpath (the one apparently is not named tidy, otherwise I could detect it in the classpath shown by maven). I am trying to find out what jar file it is and so far I have tried the following:

Class<?> tidyClass = Class.forName(Tidy.class.getName());
ClassLoader tidyLoader = tidyClass.getClassLoader();
String name = Tidy.class.getName() + ".class"; // results in tidyClass=class org.w3c.tidy.Tidy
System.out.println("resource="+tidyLoader.getResource(name)); // results in tidyLoader=org.codehaus.classworlds.RealmClassLoader@337d0f
System.out.println("path="+tidyLoader.getResource(name).getPath()); // results in resource=null

I read somewhere that the path should show the jar but apparently not with this classloader... how can I figure it out? Everything works like a charm in eclipse but when I run with maven I get this mess.. BTW eclipse says

tidyClass=class org.w3c.tidy.Tidy
tidyLoader=sun.misc.Launcher$AppClassLoader@1a7bf11
resource=null so no jar info either.
share|improve this question

1 Answer 1

up vote 5 down vote accepted

try something like this:

    Class clazz = null;
	try {
		clazz = Class.forName( typeName );
		if ( clazz != null && clazz.getProtectionDomain() != null
		        && clazz.getProtectionDomain().getCodeSource() != null )
		{
			URL codeLocation = clazz.getProtectionDomain().getCodeSource()
			        .getLocation();
			System.out.println( codeLocation.toString() );
		}
	}
	catch ( ClassNotFoundException e ) {
		System.out.println( e.getMessage() );
	}

where typeName="org.w3c.tidy.Tidy".

share|improve this answer
    
Thank you. This worked like a charm as also did understanding that the classname should be relative to its classpath: tidyClass.getResource(Tidy.class.getSimpleName() + ".class") = ar:file:/C:/Program Files/maven-2.0.7/bin/../lib/maven-core-2.0.7-uber.jar!/org/w3c/tidy/Tidy.class More similar instructions at: forums.sun.com/thread.jspa?threadID=5341830 However, maven-core-2.0.7-uber.jar!/org/w3c/tidy/Tidy.class poses a new problem! That Tidy is not the one that works with my App and I do not know how to override it! –  Martin Nov 11 '09 at 17:13
    
See <a href="stackoverflow.com/questions/1716726/… question</a>. –  Martin Nov 11 '09 at 17:21
    
This answer should be printed in gold and be put somewhere. –  Saintali Jul 8 '12 at 15:49

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.