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I've already looked at many other questions that are similar to mine, but unfortunately none of their answers have so far worked.

I have a Java project that looks like this:

MyProject/
    src/
        abc/
            MyClass.java
        xyz/
            file1.txt
            file2.txt
            ...       

Essentially, I'm trying to read all of the txt files above in MyClass.java. This is what I'm currently doing:

File dir = new File("src/xyz/");
for (File child : dir.listFiles()) {
    ...
}

This works fine until I put everything into a JAR format, at which point dir.listFiles() returns null and the above no longer works. Is there anyway I can still read these txt files even when they are packed into a JAR? Also, I am using Eclipse if it makes any difference.

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2 Answers 2

up vote 7 down vote accepted

You can access files on your classpath via the classloader.

getClass().getResourceAsStream("/xyz/file1.txt");

Then you would use the InputStream as usual. Note that I use absolute path, but relative to the current package works as well.

Since Java 6 it is also possible to list all the resources under a package quite easily:

 Enumeration urls = getClass().getClassLoader().getResources("xyz");
 urls.nextElement().openStream();
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This requires that /xyz/file1.txt is included in the JAR. This may require modifying build properties or the equivalent. –  oconnor0 Jan 21 '13 at 18:48
1  
Good answer. Happy 1K. :) –  Andrew Thompson Jan 21 '13 at 18:50
    
Thanks :) Also added a way to get all the resources under a package. –  Mirko Adari Jan 21 '13 at 18:54
    
Thanks for your reply, although Class doesn't seem to have a getResources method. –  arshajii Jan 21 '13 at 19:04
    
I will modify my answer. –  Mirko Adari Jan 21 '13 at 19:12

Is there anyway I can still read these txt files even when they are packed into a JAR?

Given you mean 'without knowing their names in advance' no.

OTOH you can include a resource at a known location in a Jar and list the possibles texts in that. Path from root or class-path, one per line would work well. Gain an URL to the resource using something like:

URL url = this.getClass().getResource("/path/to/the.resource");
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