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I tried to register a custom URL handler for a classpath protocol, as described in another thread. Here is the code:

package com.mycompany;

import org.junit.Test;
import java.net.MalformedURLException;
import java.net.URL;
import com.mycompany.protocol.classpath.Handler;

public class ParserTest {
    @Test
    public void testParsing() throws MalformedURLException {      
        System.out.println(System.getProperty("java.protocol.handler.pkgs"));

        //URL url = new URL(null, "classpath://com.mycompany/hello-world.xml", new Handler(ClassLoader.getSystemClassLoader()));
        URL url = new URL("classpath://com.mycompany/hello-world.xml");
    }
}

The test case has the following JVM arguments:

-Djava.protocol.handler.pkgs=com.mycompany.protocol

The System.out.println line properly outputs com.mycompany.protocol, so the property is being set. However, it looks like it's not being taken into effect, because the above call will throw a java.net.MalformedURLException: unknown protocol: classpath exception.

If I provide the handler explicitly as in the commented line, everything is fine. However, I would rather not provide it explicitly - it should be done automatically.

What am I doing wrong?

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Does it work if you pass the handler to the URL's constructor? (This is just a debugging proposal, not the final solution). –  Paŭlo Ebermann Jun 8 '11 at 12:16
    
Yes, if I comment out the first statement and use that one instead, it works. –  Dario Jun 8 '11 at 12:36
    
Ah, sorry, did not read the question fully :-(. –  Paŭlo Ebermann Jun 8 '11 at 12:37
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2 Answers

up vote 7 down vote accepted

I have found the issue. The original classpath handler class that I used had a non-default constructor. Of course, because it had only a non-default constructor, the handler couldn't be instantiated. I apologize to everyone who have tried to debug this issue, I failed to see this connection.

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1  
don't be sorry, they will also know how to solve this kind of question. –  Nandkumar Tekale Aug 17 '12 at 13:29
2  
"I failed to see this connection." URL humor! –  som-snytt Dec 2 '12 at 2:15
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Probably easiest way to debug such problems is to enumerate the protocol handlers registered. More details about the API can be found at http://www.learnercorner.in/topics?showTopic=1

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2  
Whilst this may theoretically answer the question, it would be preferable to include the essential parts of the answer here, and provide the link for reference. –  oers Oct 26 '12 at 10:50
1  
The link seems no longer valid (as of 11/03/2014) –  Oliver Mason Mar 11 at 15:01
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