132

I have a resources folder/package in the root of my project, I "don't" want to load a certain File. If I wanted to load a certain File, I would use class.getResourceAsStream and I would be fine!! What I actually want to do is to load a "Folder" within the resources folder, loop on the Files inside that Folder and get a Stream to each file and read in the content... Assume that the File names are not determined before runtime... What should I do? Is there a way to get a list of the files inside a Folder in your jar File? Notice that the Jar file with the resources is the same jar file from which the code is being run...

Thanks in advance...

  • 1
    This would help : stackoverflow.com/questions/1529611/… – Jigar Joshi Jun 13 '12 at 10:27
  • Also see: stackoverflow.com/questions/4764347/… – Jigar Joshi Jun 13 '12 at 10:29
  • 5
    The First one is about extracting a jar file, which is kind of the last thing I want to try, like an if-worse-comes-to-worse situation!! If I want the files extracted, I would just put them in my installation folder at installation time! I want to access them from inside the jar, and my reason is, if getResourceAsStream can access a File, Java should also be able to explore folders in that jar, without the need to extract it!! But thanks... – Mostafa Zeinali Jun 14 '12 at 5:38

10 Answers 10

110

Finally, I found the solution:

final String path = "sample/folder";
final File jarFile = new File(getClass().getProtectionDomain().getCodeSource().getLocation().getPath());

if(jarFile.isFile()) {  // Run with JAR file
    final JarFile jar = new JarFile(jarFile);
    final Enumeration<JarEntry> entries = jar.entries(); //gives ALL entries in jar
    while(entries.hasMoreElements()) {
        final String name = entries.nextElement().getName();
        if (name.startsWith(path + "/")) { //filter according to the path
            System.out.println(name);
        }
    }
    jar.close();
} else { // Run with IDE
    final URL url = Launcher.class.getResource("/" + path);
    if (url != null) {
        try {
            final File apps = new File(url.toURI());
            for (File app : apps.listFiles()) {
                System.out.println(app);
            }
        } catch (URISyntaxException ex) {
            // never happens
        }
    }
}

The second block just work when you run the application on IDE (not with jar file), You can remove it if you don't like that.

|improve this answer|||||
  • Updated the correct answer. Although this is not what I would like to do, especially in a code with 34000+ source files... But it seems to be the only solution. Thank you. – Mostafa Zeinali Oct 8 '15 at 11:03
  • 4
    FYI, this doesn't work if launched from webstart because getPath returns something relative to the server's domain. – amos Jun 17 '16 at 17:04
  • 1
    Don't think it is going to work if path is in a jar, will give this error on toURI conversion: java.lang.IllegalArgumentException: URI is not hierarchical – tribbloid Sep 3 '16 at 22:04
  • 2
    Only works for single-jar file, doesn't work to extract resources from dependencies in another jar – tribbloid Sep 3 '16 at 22:51
  • 1
    This is not a safe solution, because: 1. It assumes the .jar file is a local file on the same system; 2. URL.getPath() does not return a valid file name, it just returns the path portion of the URL, with all percent-escapes intact; 3. ProtectionDomain.getCodeSource() can return null. – VGR Oct 10 '17 at 20:00
15

Try the following.
Make the resource path "<PathRelativeToThisClassFile>/<ResourceDirectory>" E.g. if your class path is com.abc.package.MyClass and your resoure files are within src/com/abc/package/resources/:

URL url = MyClass.class.getResource("resources/");
if (url == null) {
     // error - missing folder
} else {
    File dir = new File(url.toURI());
    for (File nextFile : dir.listFiles()) {
        // Do something with nextFile
    }
}

You can also use

URL url = MyClass.class.getResource("/com/abc/package/resources/");
|improve this answer|||||
  • 25
    Thanks for the time and effort, but this does NOT work when your code base in within a .jar file and your resources are also in that .jar File. When you are inside a .jar file, you cannot create a File() and you also cannot get a URL for that folder... I personally came to peace with it and just listed each file in an XML... I don't think you can do that for a folder inside a jar file at all... – Mostafa Zeinali Nov 7 '12 at 6:22
  • 2
    Sorry that your having problems. However, it does actually work when your code base is in a jar file and your resources are also in that jar file. Your are not creating a File() on disk - you are reading the File within the jar file into java memory. Note that the ClassLoader is quite happy to treat a jar file equivalent to a directory on disk. Here's the details from the source: – Glen Best Nov 7 '12 at 11:43
  • 1
    Just ran the code on a jar and got the error...oops. V sorry, my bad. Need to handle jar URL path with "File:...!/dir1/dir2...". Two fixes: stackoverflow.com/questions/1429172/… OR String jarPath = dirURL.getPath().substring(5, dirURL.getPath().indexOf("!")); JarFile jar = new JarFile(URLDecoder.decode(jarPath, "UTF-8")); Enumeration<JarEntry> entries = jar.entries(); while(entries.hasMoreElements()) { // do something } – Glen Best Nov 8 '12 at 5:12
  • 3
    From the javadoc it's obvious that the method is not ALWAYS guaranteed to return a file under all circumstances. BUT, if you actually read the Q, the OP is 100% guaranteed to be working with files and folders by construction. The Q is asking to get access to directories and files - this is more specific that the generalised abstraction of the API. Conversion to file is appropriate and correct to meet the need. Please read the Q properly before posting such strongly contrary comments. Cheers. – Glen Best Jun 20 '14 at 3:31
  • 5
    The OP isn't working with files and directories. He is working with resources in a JAR file. Resources in a JAR file are not files or directories and cannot be listed with the File class. This code does not work with resources inside a JAR file. Period. – user207421 Jul 20 '15 at 20:01
7

I know this is many years ago . But just for other people come across this topic. What you could do is to use getResourceAsStream() method with the directory path, and the input Stream will have all the files name from that dir. After that you can concat the dir path with each file name and call getResourceAsStream for each file in a loop.

|improve this answer|||||
  • 7
    This works well unless you plan on jarring things up, as it turns out. – Tustin2121 Feb 20 '18 at 23:16
  • 1
    I think this should be the accepted solution since its clean and does not require handling jar and IDE versions in separate cases. Although I'm not sure why getResource does not find the folder but getResourceAsStream does. – Raghuram Onti Srinivasan Sep 16 '19 at 23:07
5

I had the same problem at hands while i was attempting to load some hadoop configurations from resources packed in the jar... on both the IDE and on jar (release version).

I found java.nio.file.DirectoryStream to work the best to iterate over directory contents over both local filesystem and jar.

String fooFolder = "/foo/folder";
....

ClassLoader classLoader = foofClass.class.getClassLoader();
try {
    uri = classLoader.getResource(fooFolder).toURI();
} catch (URISyntaxException e) {
    throw new FooException(e.getMessage());
} catch (NullPointerException e){
    throw new FooException(e.getMessage());
}

if(uri == null){
    throw new FooException("something is wrong directory or files missing");
}

/** i want to know if i am inside the jar or working on the IDE*/
if(uri.getScheme().contains("jar")){
    /** jar case */
    try{
        URL jar = FooClass.class.getProtectionDomain().getCodeSource().getLocation();
        //jar.toString() begins with file:
        //i want to trim it out...
        Path jarFile = Paths.get(jar.toString().substring("file:".length()));
        FileSystem fs = FileSystems.newFileSystem(jarFile, null);
        DirectoryStream<Path> directoryStream = Files.newDirectoryStream(fs.getPath(fooFolder));
        for(Path p: directoryStream){
            InputStream is = FooClass.class.getResourceAsStream(p.toString()) ;
        performFooOverInputStream(is);
        /** your logic here **/
            }
    }catch(IOException e) {
        throw new FooException(e.getMessage());     
    }
}
else{
    /** IDE case */
    Path path = Paths.get(uri);
    try {
        DirectoryStream<Path> directoryStream = Files.newDirectoryStream(path);
        for(Path p : directoryStream){
            InputStream is = new FileInputStream(p.toFile());
            performFooOverInputStream(is);
        }
    } catch (IOException _e) {
        throw new FooException(_e.getMessage());
    }
}
|improve this answer|||||
  • This worked fine for me. Only I switched the 'Path jarFile = Paths.get(jar.toString().substring("file:".length()));' with 'Path jarFile = Paths.get(jar.toURI());' to get it to work in Windows. Also used a try with resource statement for the FileSystem object. – Jarle Jacobsen Feb 6 '19 at 14:39
4

The following code returns the wanted "folder" as Path regardless of if it is inside a jar or not.

  private Path getFolderPath() throws URISyntaxException, IOException {
    URI uri = getClass().getClassLoader().getResource("folder").toURI();
    if ("jar".equals(uri.getScheme())) {
      FileSystem fileSystem = FileSystems.newFileSystem(uri, Collections.emptyMap(), null);
      return fileSystem.getPath("path/to/folder/inside/jar");
    } else {
      return Paths.get(uri);
    }
  }

Requires java 7+.

|improve this answer|||||
  • Nice! I have to add though, that FileSystem is Closeable, which means that you have to close it at some point to free system resources. Of course, returned Path will become invalid immediately after that. – Kirill Gamazkov Jul 24 '18 at 8:51
  • Note that in case of a jar file the name of the resource (here package + folder) appears to be ignored when creating the file system. Therefore getPath does not return folder/path/to/..., but only path/to/.... – Marcono1234 Mar 17 '19 at 23:36
1

Another solution, you can do it using ResourceLoader like this:

import org.springframework.core.io.Resource;
import org.apache.commons.io.FileUtils;

@Autowire
private ResourceLoader resourceLoader;

...

Resource resource = resourceLoader.getResource("classpath:/path/to/you/dir");
File file = resource.getFile();
Iterator<File> fi = FileUtils.iterateFiles(file, null, true);
while(fi.hasNext()) {
    load(fi.next())
}
|improve this answer|||||
0

Simple ... use OSGi. In OSGi you can iterate over your Bundle's entries with findEntries and findPaths.

|improve this answer|||||
  • 9
    If it involves OSGI I'd hardly call it 'simple'. But if you happen to already be using OSGI... yeah sure. But suggesting to move to OSGI just to solve this particular problem seems a bit too much. – Kris Sep 9 '16 at 18:52
  • OSGi also solves many other problems and nowadays it is very easy to get started. See the OSGi enRoute tutorials – Peter Kriens Sep 9 '16 at 19:56
  • I would stay away from OSGi unless you're already required to use it. Over designed Bloatware that solves the deployment problems of the 90s IMO. – user2337270 Dec 13 '17 at 0:03
-1

Inside my jar file I had a folder called Upload, this folder had three other text files inside it and I needed to have an exactly the same folder and files outside of the jar file, I used the code below:

URL inputUrl = getClass().getResource("/upload/blabla1.txt");
File dest1 = new File("upload/blabla1.txt");
FileUtils.copyURLToFile(inputUrl, dest1);

URL inputUrl2 = getClass().getResource("/upload/blabla2.txt");
File dest2 = new File("upload/blabla2.txt");
FileUtils.copyURLToFile(inputUrl2, dest2);

URL inputUrl3 = getClass().getResource("/upload/blabla3.txt");
File dest3 = new File("upload/Bblabla3.txt");
FileUtils.copyURLToFile(inputUrl3, dest3);
|improve this answer|||||
  • 1
    Hi, thanks for the answer, but, you see, you needed to know the name of each file inside that folder when writing the code; and you had to name each one explicitly. What I was looking for was a method for iterating on the files inside the folder, and getting their names on runtime, so I could add resources to the folder, without changing the code, knowing the code will process them too. Thanks for your time though. :3 – Mostafa Zeinali Nov 4 '15 at 19:41
-1

As the other answers point out, once the resources are inside a jar file, things get really ugly. In our case, this solution:

https://stackoverflow.com/a/13227570/516188

works very well in the tests (since when the tests are run the code is not packed in a jar file), but doesn't work when the app actually runs normally. So what I've done is... I hardcode the list of the files in the app, but I have a test which reads the actual list from disk (can do it since that works in tests) and fails if the actual list doesn't match with the list the app returns.

That way I have simple code in my app (no tricks), and I'm sure I didn't forget to add a new entry in the list thanks to the test.

|improve this answer|||||
-25

This link tells you how.

The magic is the getResourceAsStream() method :

InputStream is = 
this.getClass().getClassLoader().getResourceAsStream("yourpackage/mypackage/myfile.xml")
|improve this answer|||||
  • 19
    No dude!! I DON'T want a single file!! I want a whole Folder, whose sub files are undetermined pre-runtime!!! – Mostafa Zeinali Jun 13 '12 at 10:42

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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