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I am familiar with obtaining the contents of a properties file given the name of the file, and obviously MyClass.class.getResource('*.properties') will not work, but how can I obtain a list of ALL the properties files located in the same package as my class?

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This is easy with Spring, so on the off-chance you're using it, I can give you a Spring-based answer. – skaffman Jun 2 '10 at 18:33
3  
Ok... so I am starting to think this isn't possible. From my understanding Java uses lazy classloading and therefore the classloader doesn't know what is in a package until it is asked to retrieve a class. The closest thing I can come up with is to attempt to resolve a package name to directory, get a list of prop. files in the dir, and attempt to load them via the class.getResource(). I know that's a hack; is there a better way? – Stoney Jun 2 '10 at 18:35
    
Aha! That sounds like it would work, any answering utilizing Spring is quite acceptable and would be much appreciated – Stoney Jun 2 '10 at 18:37
    
please post targeted comments with @nickname, such as @skaffman so that he get notified about it :) And yes, it's nasty to do so with java.io.File and consorts. And yes, a Spring solution would be nicer. – BalusC Jun 2 '10 at 18:38
    
@skaffman Any Spring solution you can provide would be extremely helpful. Thanks for your time – Stoney Jun 2 '10 at 18:50
up vote 3 down vote accepted

You can do these sort of things with Spring. See 4. Resources, particurlarely (or notabily ? ) (or principalementely ? ) (or mainly ? ) at 4.7.2 Wildcards in application context constructor resource paths.

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Curses, someone stole my thunder :) Have a cookie. +1 – skaffman Jun 2 '10 at 19:21

Assuming that it's not JAR-packaged, you can use File#listFiles() for this. Here's a kickoff example:

String path = MyClass.class.getResource("").getPath();
File[] propertiesFiles = new File(path).listFiles(new FilenameFilter() {
    public boolean accept(File dir, String name) {
        return name.endsWith(".properties");
    }
});

If it's JAR-packaged, then you need a bit more code, to start with JarFile API. You can find another example in this answer.

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Sorry, no File allowed. Class is currently not in a jar... but I do not know what the future holds for my class and I have no control over the enviroment this will be run in, so it needs to be as decoupled as possible – Stoney Jun 2 '10 at 18:48
    
Sorry... don't have enough points to vote up ur answer yet... – Stoney Jun 2 '10 at 18:55

This is how I did it,

    Class<? extends Object> clazz = AnyKnownClassInTheJar.class;
    String className = clazz.getSimpleName() + ".class";
    String classPath = clazz.getResource(className).toString();
    if (!classPath.startsWith("jar")) {
      // Class not from JAR
      return;
    }
    URL url = new URL(classPath);
    JarURLConnection conn = (JarURLConnection)url.openConnection();
    JarFile jf = conn.getJarFile();
    for (Enumeration<JarEntry> i = jf.entries(); i.hasMoreElements();) {
        JarEntry je = i.nextElement();
        String name = je.getName();
        if (name.indexOf(".properties") != -1) {
            // Load the property file
        }
    }
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