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.

How can I use ClassLoader.getResources() to find recursivly resources from my classpath?

E.g.

  • finding all resources in the META-INF "directory": Imagine something like

    getClass().getClassLoader().getResources("META-INF")

    Unfortunately, this does only retrieve an URL to exactly this "directory".

  • all resources named bla.xml (recursivly)

    getClass().getClassLoader().getResources("bla.xml")

    But this returns an empty Enumeration.

And as a bonus question: How does ClassLoader.getResources() differ from ClassLoader.getResource()?

share|improve this question
12  
@Andrew, a lot of frameworks iterate for some files based on name or extensions in the archives to automate some processes, like finding the ActionBeans of Stripes, or the hbm.xml files for hibernate. –  bestsss Mar 4 '11 at 13:37
    
See stackoverflow.com/questions/1429172/… –  Vadzim Aug 24 '12 at 15:29
    
The reson why it confuses you is that getResources works on a class loader which can have multiple JARs in the classpath. So if you have multiple JARs with the same resource, you get all. However it is NOT intended to search inside directories. With getResources("META-INF") you get all META-INFO directories in the search path of the CL and if the CL is a single jar file class loader, you at most get one entry. –  eckes May 23 at 14:05

5 Answers 5

up vote 13 down vote accepted

There is no way to recursively search through the classpath. You need to know the Full pathname of a resource to be able to retrieve it in this way. The resource may be in a directory in the file system or in a jar file so it is not as simple as performing a directory listing of "the classpath". You will need to provide the full path of the resource e.g. '/com/mypath/bla.xml'.

For your second question, getResource will return the first resource that matches the given resource name. The order that the class path is searched is given in the javadoc for getResource.

share|improve this answer
5  
There is no way to recursively search through the classpath... Sure, it's possible. For example: URLClassLoader.getURLs(). Open the JarFile, iterate through. –  bestsss Mar 4 '11 at 13:04
1  
@bestsss : what if the URL does not point to a JarFile, but to a directory? –  MRalwasser Mar 4 '11 at 13:13
2  
@bestsss, @MRalwasser: or even worse, if it points to a HTTP url? –  Joachim Sauer Mar 4 '11 at 13:15
2  
;) well, the classloader can be just simple subclass of java.lang.ClassLoader w/o the URL part at any rate. It can generate the classes in the memory and so on. It might have very custom getResource, etc. @MRalwasser, if it points to some file system you process it like that, it's a simple scenario. @Joachim, besides applets nowadays there are not cases the files are kept remotely. The URL can be anything but as long as it is JAR one, you cant retrieve the jar from http.--What I told doesn't hold true always and it was not meant like universal solition,however it covers over 98% of the cases. –  bestsss Mar 4 '11 at 13:32

This is the simplest wat to get the File object to which a certain URL object is pointing at:

File file=new File(url.toURI());

Now, for your concrete questions:

  • finding all resources in the META-INF "directory":

You can indeed get the File object pointing to this URL

Enumeration<URL> en=getClass().getClassLoader().getResources("META-INF");
if (en.hasMoreElements()) {
    URL metaInf=en.nextElement();
    File fileMetaInf=new File(metaInf.toURI());

    File[] files=fileMetaInf.listFiles();
    //or 
    String[] filenames=fileMetaInf.list();
}
  • all resources named bla.xml (recursivly)

In this case, you'll have to do some custom code. Here is a dummy example:

final List<File> foundFiles=new ArrayList<File>();

FileFilter customFilter=new FileFilter() {
    @Override
    public boolean accept(File pathname) {

        if(pathname.isDirectory()) {
            pathname.listFiles(this);
        }
        if(pathname.getName().endsWith("bla.xml")) {
            foundFiles.add(pathname);
            return true;
        }
        return false;
    }

};      
//rootFolder here represents a File Object pointing the root forlder of your search 
rootFolder.listFiles(customFilter);

When the code is run, you'll get all the found ocurrences at the foundFiles List.

share|improve this answer
5  
I doubt that this will work in any cases for every type of ClassLoaders (e.g. classes within jar-files) –  MRalwasser Mar 29 '11 at 8:04
8  
I tested, I get an exception: java.lang.IllegalArgumentException: URI is not hierarchical. You cannot create a File object from an opaque URI like "jar:..." –  cn1h Mar 19 '12 at 7:55

Here is code based on bestsss' answer:

    Enumeration<URL> en = getClass().getClassLoader().getResources(
            "META-INF");
    List<String> profiles = new ArrayList<>();
    if (en.hasMoreElements()) {
        URL url = en.nextElement();
        JarURLConnection urlcon = (JarURLConnection) (url.openConnection());
        try (JarFile jar = urlcon.getJarFile();) {
            Enumeration<JarEntry> entries = jar.entries();
            while (entries.hasMoreElements()) {
                String entry = entries.nextElement().getName();
                System.out.println(entry);
            }
        }
    }
share|improve this answer
1  
The structure of this kind of confused me at first. It seems as though the only purpose of getClass().getClassLoader().getResources("META-INF") is to get a reference to some arbitrary file in the jar, which we then use to get the JarURLConnection. I originally thought this would iterate over files in the META-INF directory, but it actually iterates over every single file in the entire jar. –  Alex Pritchard Nov 29 '13 at 19:10

The Spring Framework has a class which allows to recursively search through the classpath:

PathMatchingResourcePatternResolver resolver = new PathMatchingResourcePatternResolver();
resolver.getResources("classpath*:some/package/name/**/*.xml");
share|improve this answer

MRalwasser, I'd give you a hint, cast the URL.getConnection() to JarURLConnection. Then use JarURLConnection.getJarFile() and voila! You have the JarFile and you are free to access the resources inside.

The rest I leave to you.

Hope this helps!

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.