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I have a folder inside my project that has 238 images. I want to be able to find all images within the directory.

I'm currently accessing all these images like this:

File directory = new File(FileNameGuesser.class.getResource(DIRECTORY).getPath());
for (File file : directory.listFiles()) {
    // filter, process, etc.
}

This works fine within Eclipse. However, when I export to a jar file, FileNameGuesser.class.getResource(DIRECTORY) returns C:\Users\...\file.jar!\org\... (because it's zipped, I assume) and the method breaks.

How can I achieve this?

EDIT: If possible, I'd like to find a solution that works both in Eclipse and in the jar that's deployed.

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Possible duplicate of Getting a directory inside a .jar –  Andrew Thompson Aug 18 '12 at 4:39
    
@AndrewThompson Well it could be seen as a duplicate but there are other answers than the one supplied in your link. I supplied a fully functional answer that differs from those. –  maba Aug 18 '12 at 6:37
    
@maba ..Just as you might have provided an answer on the linked question. Many things are possible. :) –  Andrew Thompson Aug 18 '12 at 6:57
    
@AndrewThompson Well yes I could have but that would have drowned among all the other answers there and the question is rather old and would get less attention. –  maba Aug 18 '12 at 6:59

2 Answers 2

This isn't really possible in any nice and clean way.

It would be nice to be able to do .getClass().getResources("/pictures/*.jpg") (or something), but we can't.

The best you can do is cheat a little. If you know the name of the jar file where the images are stored, you can use either the JarFile or ZipFile APIs to get a listing:

ZipFile zipFile = null;
try {

    zipFile = new ZipFile(new File("...")); // Path to your Jar
    Enumeration<? extends ZipEntry> entries = zipFile.entries();
    while (entries.hasMoreElements()) {

        ZipEntry entry = entries.nextElement();

        // Here, I've basically looked for the "pictures" folder in the Zip
        // You will need to provide the appropriate value
        if (!entry.isDirectory() && entry.getName().startsWith("pictures")) {

            // Basically, from here you should have the full name of the
            // image.  You should be able to then construct a resource path
            // to the image to load it...

            // URL url = getClass().getResource("/" + entry.getName());
            System.out.println(entry.getName());

        }

    }

} catch (Exception exp) {

    exp.printStackTrace();

} finally {


    try {
        zipFile.close();
    } catch (Exception e) {
    }

}

A better solution would be not to embedded these images in your jar, if you don't know their names in advance.

Embedded resources really should be known by name to your application in advance.

As suggested by AndrewThompson, you could generate a list of resources, add this to your Jar file. At runtime, you would load this file and have access to all the resources.

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Good idea!!!!!! –  Satish Pandey Aug 18 '12 at 4:32
1  
new ZipFile(new File("...")); Will not work in an applet or JWS app. The URL will always point back to the server, even if the resource is cached. If the resources are cached they will typically be loose files (in the JWS cache, at least) as opposed to Zip or Jar style archives. Note that a ZipInputStream can be obtained for an URL. See the linked 'duplicate' accepted answer for more details. –  Andrew Thompson Aug 18 '12 at 4:44
    
That makes sense. So does zipFile.entries() recursively get all files and folders within the zip/jar? –  WChargin Aug 18 '12 at 4:46
1  
Everybody, got check out the link that AndrewThompson has provided. His idea of using an URL and ZipStream is a better approach to using a File reference! –  MadProgrammer Aug 18 '12 at 4:52
2  
"If possible, I'd like to find a solution that works both in Eclipse and in the jar that's deployed." I feel this is better off solved by using a build tool to compile/jar/(sign/)run the code and use a method suited to a Jar. -- There is yet another method of getting a list of content, but it also requires a build tool. It is, create a list of target files and put it in a known location in the Jar. Retrieve the list from the known location at run-time, read it for the list. –  Andrew Thompson Aug 18 '12 at 7:06

You can use the PathMatchingResourcePatternResolver provided by Spring.

public class SpringResourceLoader {

    public static void main(String[] args) throws IOException {
        PathMatchingResourcePatternResolver resolver = new PathMatchingResourcePatternResolver();

        // Ant-style path matching
        Resource[] resources = resolver.getResources("/pictures/**");

        for (Resource resource : resources) {
            System.out.println("resource = " + resource);
            InputStream is = resource.getInputStream();
            BufferedImage img =  ImageIO.read(is);
            System.out.println("img.getHeight() = " + img.getHeight());
            System.out.println("img.getWidth() = " + img.getWidth());
        }
    }
}

I didn't do anything fancy with the returned Resource but you get the picture.

Add this to your maven dependency (if using maven):

<dependency>
    <groupId>org.springframework</groupId>
    <artifactId>spring-core</artifactId>
    <version>3.1.2.RELEASE</version>
</dependency>

This will work directly from within Eclipse/NetBeans/IntelliJ and in the jar that's deployed.

Running from within IntelliJ gives me the following output:

resource = file [C:\Users\maba\Development\stackoverflow\Q12016222\target\classes\pictures\BMW-R1100S-2004-03.jpg]
img.getHeight() = 768
img.getWidth() = 1024

Running from command line with executable jar gives me the following output:

C:\Users\maba\Development\stackoverflow\Q12016222\target>java -jar Q12016222-1.0-SNAPSHOT.jar
resource = class path resource [pictures/BMW-R1100S-2004-03.jpg]
img.getHeight() = 768
img.getWidth() = 1024
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