233

I am looking for a way to get a list of all resource names from a given classpath directory, something like a method List<String> getResourceNames (String directoryName).

For example, given a classpath directory x/y/z containing files a.html, b.html, c.html and a subdirectory d, getResourceNames("x/y/z") should return a List<String> containing the following strings:['a.html', 'b.html', 'c.html', 'd'].

It should work both for resources in filesystem and jars.

I know that I can write a quick snippet with Files, JarFiles and URLs, but I do not want to reinvent the wheel. My question is, given existing publicly available libraries, what is the quickest way to implement getResourceNames? Spring and Apache Commons stacks are both feasible.

14 Answers 14

159

Custom Scanner

Implement your own scanner. For example:

private List<String> getResourceFiles(String path) throws IOException {
    List<String> filenames = new ArrayList<>();

    try (
            InputStream in = getResourceAsStream(path);
            BufferedReader br = new BufferedReader(new InputStreamReader(in))) {
        String resource;

        while ((resource = br.readLine()) != null) {
            filenames.add(resource);
        }
    }

    return filenames;
}

private InputStream getResourceAsStream(String resource) {
    final InputStream in
            = getContextClassLoader().getResourceAsStream(resource);

    return in == null ? getClass().getResourceAsStream(resource) : in;
}

private ClassLoader getContextClassLoader() {
    return Thread.currentThread().getContextClassLoader();
}

Spring Framework

Use PathMatchingResourcePatternResolver from Spring Framework.

Ronmamo Reflections

The other techniques might be slow at runtime for huge CLASSPATH values. A faster solution is to use ronmamo's Reflections API, which precompiles the search at compile time.

  • 12
    if using Reflections, all you actually need: new Reflections("my.package", new ResourcesScanner()).getResources(pattern) – zapp Mar 16 '13 at 13:16
  • 23
    Does first solution works when it executed from jar file? For me - it doesn't. I can read file by this way, but can't read directory. – Valentina Chumak Oct 6 '16 at 12:28
  • 4
    The first method described in this answer -- reading the path as a resource, does not seem to work when the resources are in the same JAR as the executable code, at least with OpenJDK 1.8. The failure is rather odd -- a NullPointerException is thrown from deep in the JVM's file processing logic. It's as if the designers didn't really anticipate this use of resources, and there is only a partial implementation. Even if it works on some JDKs or environments, this doesn't seem to be documented behaviour. – Kevin Boone Sep 18 '17 at 7:21
  • 6
    You cant read directory like this, since there is no directory but file streams. This answer is half wrong. – Thomas Decaux Nov 15 '17 at 8:37
  • 2
    The first method doesn't appear to work -- at least when running from the development environment, prior to jarring up the resources. The call to getResourceAsStream() with a relative path to a directory leads to a FileInputStream(File), which is defined to throw FileNotFoundException if the file is a directory. – Andy Thomas Dec 6 '17 at 23:14
50

Here is the code
Source: forums.devx.com/showthread.php?t=153784

import java.io.File;
import java.io.IOException;
import java.util.ArrayList;
import java.util.Collection;
import java.util.Enumeration;
import java.util.regex.Pattern;
import java.util.zip.ZipEntry;
import java.util.zip.ZipException;
import java.util.zip.ZipFile;

/**
 * list resources available from the classpath @ *
 */
public class ResourceList{

    /**
     * for all elements of java.class.path get a Collection of resources Pattern
     * pattern = Pattern.compile(".*"); gets all resources
     * 
     * @param pattern
     *            the pattern to match
     * @return the resources in the order they are found
     */
    public static Collection<String> getResources(
        final Pattern pattern){
        final ArrayList<String> retval = new ArrayList<String>();
        final String classPath = System.getProperty("java.class.path", ".");
        final String[] classPathElements = classPath.split(System.getProperty("path.separator"));
        for(final String element : classPathElements){
            retval.addAll(getResources(element, pattern));
        }
        return retval;
    }

    private static Collection<String> getResources(
        final String element,
        final Pattern pattern){
        final ArrayList<String> retval = new ArrayList<String>();
        final File file = new File(element);
        if(file.isDirectory()){
            retval.addAll(getResourcesFromDirectory(file, pattern));
        } else{
            retval.addAll(getResourcesFromJarFile(file, pattern));
        }
        return retval;
    }

    private static Collection<String> getResourcesFromJarFile(
        final File file,
        final Pattern pattern){
        final ArrayList<String> retval = new ArrayList<String>();
        ZipFile zf;
        try{
            zf = new ZipFile(file);
        } catch(final ZipException e){
            throw new Error(e);
        } catch(final IOException e){
            throw new Error(e);
        }
        final Enumeration e = zf.entries();
        while(e.hasMoreElements()){
            final ZipEntry ze = (ZipEntry) e.nextElement();
            final String fileName = ze.getName();
            final boolean accept = pattern.matcher(fileName).matches();
            if(accept){
                retval.add(fileName);
            }
        }
        try{
            zf.close();
        } catch(final IOException e1){
            throw new Error(e1);
        }
        return retval;
    }

    private static Collection<String> getResourcesFromDirectory(
        final File directory,
        final Pattern pattern){
        final ArrayList<String> retval = new ArrayList<String>();
        final File[] fileList = directory.listFiles();
        for(final File file : fileList){
            if(file.isDirectory()){
                retval.addAll(getResourcesFromDirectory(file, pattern));
            } else{
                try{
                    final String fileName = file.getCanonicalPath();
                    final boolean accept = pattern.matcher(fileName).matches();
                    if(accept){
                        retval.add(fileName);
                    }
                } catch(final IOException e){
                    throw new Error(e);
                }
            }
        }
        return retval;
    }

    /**
     * list the resources that match args[0]
     * 
     * @param args
     *            args[0] is the pattern to match, or list all resources if
     *            there are no args
     */
    public static void main(final String[] args){
        Pattern pattern;
        if(args.length < 1){
            pattern = Pattern.compile(".*");
        } else{
            pattern = Pattern.compile(args[0]);
        }
        final Collection<String> list = ResourceList.getResources(pattern);
        for(final String name : list){
            System.out.println(name);
        }
    }
}  

If you are using Spring Have a look at PathMatchingResourcePatternResolver

  • 3
    Questioner knows how to implement it using standard java classes, but he wants to know how he can utilize existing (Spring, Apache Commons) libraries. – Jeroen Rosenberg Oct 13 '10 at 11:54
  • @Jeroen Rosenberg There is also another way given which has been selected finally :) – Jigar Joshi Oct 13 '10 at 12:26
  • 7
    I find this solution useful for cases you don't use Spring - it would be ridiculous to add a dependency on Spring becuase of this feature only. So, thank you! "Dirty" but useful :) P.S. One might want to use File.pathSeparator instead of hard-coded : in getResources method. – Timur Sep 27 '11 at 14:05
  • 5
    The code example is system dependent, use this instead: final String[] classPathElements = classPath.split(System.pathSeparator); – dcompiled Feb 19 '12 at 20:53
  • 1
    Caveat: The java.class.path system property may not contain the actual classpath you're running under. You could alternatively look at the class loader and interrogate it for what URLs it's loading classes from. The other caveat of course is that if you're doing this under a SecurityManager, the ZipFile constructor can reject your access to the file, so you should be catching that. – Trejkaz Feb 8 '16 at 22:59
21

Using Reflections

Get everything on the classpath:

Reflections reflections = new Reflections(null, new ResourcesScanner());
Set<String> resourceList = reflections.getResources(x -> true);

Another example - get all files with extension .csv from some.package:

Reflections reflections = new Reflections("some.package", new ResourcesScanner());
Set<String> fileNames = reflections.getResources(Pattern.compile(".*\\.csv"));
  • is there any way to achieve the same without having to import the google dependency? I'd like to avoid to have this dependency just to perform this task. – Enrico Giurin Mar 5 '19 at 22:25
  • 1
    Reflections is not a Google library. – Luke Hutchison Oct 5 '19 at 10:31
  • Maybe it was in the past. My answer is from 2015 and I did find some reference to the library using the phrase "Google Reflections" before 2015. I see the code has moved around a bit and has moved from code.google.com here to github here – NS du Toit Oct 6 '19 at 18:40
  • @NSduToit that was probably an artifact of hosting the code on Google Code (not an uncommon mistake), not a claim of authorship by Google. – matt b Jan 7 at 19:21
16

If you use apache commonsIO you can use for the filesystem (optionally with extension filter):

Collection<File> files = FileUtils.listFiles(new File("directory/"), null, false);

and for resources/classpath:

List<String> files = IOUtils.readLines(MyClass.class.getClassLoader().getResourceAsStream("directory/"), Charsets.UTF_8);

If you don't know if "directoy/" is in the filesystem or in resources you may add a

if (new File("directory/").isDirectory())

or

if (MyClass.class.getClassLoader().getResource("directory/") != null)

before the calls and use both in combination...

  • 21
    Files != resources – djechlin Dec 13 '13 at 21:27
  • 3
    Sure, resources may not always be files but the question was about resources originating from files/directories. So use the example code if you want to check different location e.g. if you have a config.xml in your resources for some default configuration and it should be possible to load an external config.xml instead if it exists... – Rob Dec 19 '13 at 16:03
  • 2
    And why resourses are not files? Resourses are files archived into zip archive. Those are loaded into memory and accessed in specific way but I can't see why they are not files. Any exaple of resource that is not 'a file within archive'? – Mykhaylo Adamovych May 18 '17 at 7:20
  • 9
    Not working (NullPointerException) when the target resource is a directory that resides inside a JAR File (i.e. the JAR contains the Main app and the target directory) – Carlitos Way Jun 26 '17 at 23:51
11

So in terms of the PathMatchingResourcePatternResolver this is what is needed in the code:

@Autowired
ResourcePatternResolver resourceResolver;

public void getResources() {
  resourceResolver.getResources("classpath:config/*.xml");
}
  • just a small addition if you want to search all possible resources in all the classpath you need to use classpath*:config/*.xml – revau.lt Jan 8 '19 at 13:31
5

The Spring framework's PathMatchingResourcePatternResolver is really awesome for these things:

private Resource[] getXMLResources() throws IOException
{
    ClassLoader classLoader = MethodHandles.lookup().getClass().getClassLoader();
    PathMatchingResourcePatternResolver resolver = new PathMatchingResourcePatternResolver(classLoader);

    return resolver.getResources("classpath:x/y/z/*.xml");
}

Maven dependency:

<dependency>
    <groupId>org.springframework</groupId>
    <artifactId>spring-core</artifactId>
    <version>LATEST</version>
</dependency>
5

Used a combination of Rob's response.

final String resourceDir = "resourceDirectory/";
List<String> files = IOUtils.readLines(Thread.currentThread().getClass().getClassLoader().getResourceAsStream(resourceDir), Charsets.UTF_8);

for(String f : files){
  String data= IOUtils.toString(Thread.currentThread().getClass().getClassLoader().getResourceAsStream(resourceDir + f));
  ....process data
}
  • how to get all resources: i.e. starting with either /' or .` or ./ none of which actually worked – javadba Jan 5 at 12:23
3

This should work (if spring is not an option):

public static List<String> getFilenamesForDirnameFromCP(String directoryName) throws URISyntaxException, UnsupportedEncodingException, IOException {
    List<String> filenames = new ArrayList<>();

    URL url = Thread.currentThread().getContextClassLoader().getResource(directoryName);
    if (url != null) {
        if (url.getProtocol().equals("file")) {
            File file = Paths.get(url.toURI()).toFile();
            if (file != null) {
                File[] files = file.listFiles();
                if (files != null) {
                    for (File filename : files) {
                        filenames.add(filename.toString());
                    }
                }
            }
        } else if (url.getProtocol().equals("jar")) {
            String dirname = directoryName + "/";
            String path = url.getPath();
            String jarPath = path.substring(5, path.indexOf("!"));
            try (JarFile jar = new JarFile(URLDecoder.decode(jarPath, StandardCharsets.UTF_8.name()))) {
                Enumeration<JarEntry> entries = jar.entries();
                while (entries.hasMoreElements()) {
                    JarEntry entry = entries.nextElement();
                    String name = entry.getName();
                    if (name.startsWith(dirname) && !dirname.equals(name)) {
                        URL resource = Thread.currentThread().getContextClassLoader().getResource(name);
                        filenames.add(resource.toString());
                    }
                }
            }
        }
    }
    return filenames;
}
  • This received a downvote recently - if you found a problem with it, please do share, thank you! – fl0w Aug 14 '18 at 6:34
  • 1
    Thank you @ArnoUnkrig - please share your updated solution if you like – fl0w Nov 9 '18 at 12:42
1

With Spring it's easy. Be it a file, or folder, or even multiple files, there are chances, you can do it via injection.

This example demonstrates the injection of multiple files located in x/y/z folder.

import org.springframework.beans.factory.annotation.Value;
import org.springframework.core.io.Resource;
import org.springframework.stereotype.Service;

@Service
public class StackoverflowService {
    @Value("classpath:x/y/z/*")
    private Resource[] resources;

    public List<String> getResourceNames() {
        return Arrays.stream(resources)
                .map(Resource::getFilename)
                .collect(Collectors.toList());
    }
}

It does work for resources in the filesystem as well as in JARs.

  • 1
    I want to get the folder names under /BOOT-INF/classes/static/stories. I try your code with @Value("classpath:static/stories/*") and it returns an empty list when running the JAR. It works for resources in the classpath, but not when they are in the JAR. – P-S Feb 27 '19 at 13:00
  • @Value("classpath:x/y/z/*") private Resource[] resources; did the trick to me. Have search hours for that! Thanks! – Rudolf Schmidt Mar 29 '19 at 10:09
1

The most robust mechanism for listing all resources in the classpath is currently to use this pattern with ClassGraph, because it handles the widest possible array of classpath specification mechanisms, including the new JPMS module system. (I am the author of ClassGraph.)

List<String> resourceNames;
try (ScanResult scanResult = new ClassGraph().whitelistPaths("x/y/z").scan()) {
    resourceNames = scanResult.getAllResources().getNames();
}
0

I think you can leverage the [Zip File System Provider][1] to achieve this. When using FileSystems.newFileSystem it looks like you can treat the objects in that ZIP as a "regular" file.

In the linked documentation above:

Specify the configuration options for the zip file system in the java.util.Map object passed to the FileSystems.newFileSystem method. See the [Zip File System Properties][2] topic for information about the provider-specific configuration properties for the zip file system.

Once you have an instance of a zip file system, you can invoke the methods of the [java.nio.file.FileSystem][3] and [java.nio.file.Path][4] classes to perform operations such as copying, moving, and renaming files, as well as modifying file attributes.

The documentation for the jdk.zipfs module in [Java 11 states][5]:

The zip file system provider treats a zip or JAR file as a file system and provides the ability to manipulate the contents of the file. The zip file system provider can be created by [FileSystems.newFileSystem][6] if installed.

Here is a contrived example I did using your example resources. Note that a .zip is a .jar, but you could adapt your code to instead use classpath resources:

Setup

cd /tmp
mkdir -p x/y/z
touch x/y/z/{a,b,c}.html
echo 'hello world' > x/y/z/d
zip -r example.zip x

Java

import java.io.IOException;
import java.net.URI;
import java.nio.file.FileSystem;
import java.nio.file.FileSystems;
import java.nio.file.Files;
import java.util.Collections;
import java.util.stream.Collectors;

public class MkobitZipRead {

  public static void main(String[] args) throws IOException {
    final URI uri = URI.create("jar:file:/tmp/example.zip");
    try (
        final FileSystem zipfs = FileSystems.newFileSystem(uri, Collections.emptyMap());
    ) {
      Files.walk(zipfs.getPath("/")).forEach(path -> System.out.println("Files in zip:" + path));
      System.out.println("-----");
      final String manifest = Files.readAllLines(
          zipfs.getPath("x", "y", "z").resolve("d")
      ).stream().collect(Collectors.joining(System.lineSeparator()));
      System.out.println(manifest);
    }
  }

}

Output

Files in zip:/
Files in zip:/x/
Files in zip:/x/y/
Files in zip:/x/y/z/
Files in zip:/x/y/z/c.html
Files in zip:/x/y/z/b.html
Files in zip:/x/y/z/a.html
Files in zip:/x/y/z/d
-----
hello world
0

Neither of answers worked for me even though I had my resources put in resources folders and followed the above answers. What did make a trick was:

@Value("file:*/**/resources/**/schema/*.json")
private Resource[] resources;
0

My way, no Spring, used during a unit test:

URI uri = TestClass.class.getResource("/resources").toURI();
Path myPath = Paths.get(uri);
Stream<Path> walk = Files.walk(myPath, 1);
for (Iterator<Path> it = walk.iterator(); it.hasNext(); ) {
    Path filename = it.next();   
    System.out.println(filename);
}
-5

Based on @rob 's information above, I created the implementation which I am releasing to the public domain:

private static List<String> getClasspathEntriesByPath(String path) throws IOException {
    InputStream is = Main.class.getClassLoader().getResourceAsStream(path);

    StringBuilder sb = new StringBuilder();
    while (is.available()>0) {
        byte[] buffer = new byte[1024];
        sb.append(new String(buffer, Charset.defaultCharset()));
    }

    return Arrays
            .asList(sb.toString().split("\n"))          // Convert StringBuilder to individual lines
            .stream()                                   // Stream the list
            .filter(line -> line.trim().length()>0)     // Filter out empty lines
            .collect(Collectors.toList());              // Collect remaining lines into a List again
}

While I would not have expected getResourcesAsStream to work like that on a directory, it really does and it works well.

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