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I am writing a function which needs to access a folder in the resources, and loop through all filenames, and if those match the criteria, those files are loaded.

new File(getClass.getResource("/images/sprites").getPath).listFiles()

returns a null pointer exception, where the directory tree follows Resources -> images -> sprites ->

Please can somebody point me in the right direction?

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2 Answers 2

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Joop Eggen's answer is awesome, however it can only do one of two things:

  • Read the resources content when running from a IDE
  • Read the resources content when running the JAR via the command line

So here's a example (Kotlin, but it should be easy to migrate it to Java) that allows you to have both: Reading the resources content when running from a IDE or via the command line!

    val uri = MainApp::class.java.getResource("/locales/").toURI()
    val dirPath = try {
        Paths.get(uri)
    } catch (e: FileSystemNotFoundException) {
        // If this is thrown, then it means that we are running the JAR directly (example: not from an IDE)
        val env = mutableMapOf<String, String>()
        FileSystems.newFileSystem(uri, env).getPath("/locales/")
    }

    Files.list(dirPath).forEach {
        println(it.fileName)
        if (it.fileName.toString().endsWith("txt")) {
            println("Result:")
            println(Files.readString(it))
        }
    }
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A zip file system using jar:file: URIs would be something like this:

    URI uri = MainApp.class.getResource("/images/sprites").toURI();
    Map<String, String> env = new HashMap<>();
    try (FileSystem zipfs = FileSystems.newFileSystem(uri, env)) {
        //Path path = zipfs.getPath("/images/icons16");
        for (Path path : zipfs.getRootDirectories()) {
            Files.list(path.resolve("/images/sprites"))
                    .forEach(p -> System.out.println("* " + p));
        }
    }

Here I show getRootDirectories to possibly iterate over all resources.

Using the Files.copy one may copy them etcetera.


After comment of @MrPowerGamerBR:

The solution above deals with a jar. A more general solution, not exposing the jar character, is:

    URI uri = MAinApp.class.getResource("/images/sprites").toURI();
    Path dirPath = Paths.get(uri);
    Files.list(dirPath)
         .forEach(p -> System.out.println("* " + p));

(In fact one might even read lines from the directory itself, but this is the correct abstraction, using Path.)

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  • 1
    This is a very clean solution but only works if you are running the application JAR itself, it doesn't work inside of a IDE. Commented Jan 13, 2021 at 17:44
  • 1
    oh wow I didn't expect a response that quick! The only reason I pointed that out is because your (original) answer was so clean compared to the hacks and workarounds that I found out in other SO threads, that I was a bit bummed that it didn't work inside of a IDE. I've tried your new answer and while that works inside of a IDE, it doesn't work running from inside the JAR. (But maybe it would be possible to check if it is running within a JAR and, if it is, use the other code! ...and it would still be more clean than the other workarounds people do to read files!) Commented Jan 13, 2021 at 20:22
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    @MrPowerGamerBR Thanks for pointing out the limitation. As StackOverflow is not suited for too complex code, we'll leave it as an "exercise."
    – Joop Eggen
    Commented Jan 13, 2021 at 20:32
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    @KauêOliveira thanks for the criticism, I hope you also saw MrPowerGamerBR's nice answer. I was not willing to write something like that: there must be something more universal, and I did not have the time. I admit my pretext was just that. I promise betterment.
    – Joop Eggen
    Commented May 11, 2022 at 0:16
  • 1
    Little off-topic: please note, when using Files.list, to use it in try-with-resource block, as stream returned form Files.list(Path) needs to be closed. Hence: try (var list = Files.list(dirPath)) { list.forEach(System.out::println); }
    – Cromax
    Commented Feb 21, 2023 at 20:42

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