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I've made a project consisting of some java files, an images folder with a few images and a data folder with a few text files. Everything works perfectly when I compile the program and run it through terminal. I decided to try and turn it into a jar file, so after lots of research I managed to do it, including using a manifest file. Here is what I type into terminal to do it:

jar cvfm Program.jar manifest.txt *.class images data  

Giving this output:

added manifest  
adding: a.class (in = 500) (out = 500) (deflated 50%)  
adding: b.class (in = 500) (out = 500) (deflated 50%)  
adding: images/ (in = 0) (out = 0) (stored 0%)  
adding: images/a.png (in = 500) (out = 500) (deflated 50%)  
adding: images/b.png (in = 500) (out = 500) (deflated 50%)  
adding: data/ (in = 0) (out = 0) (stored 0%)  
adding: data/a.txt (in = 500) (out = 500) (deflated 50%)  

The only lines of which stand out being the images/ and data/ which have in, out, stored =0.

This works and it lists all of the files correctly within the jar file. The jar file even runs perfectly when in the correct directory of the program, however if I remove it from that directory, it no longer can find any of the resource files (images and data) and I have no idea why. It may be a way that I am referencing them in my code or that the resource files aren't attached properly, but I'm not really sure. My manifest file consists of:

Manifest-Version: 1.0  
Main-Class: Strike

Any help would be appreciated.

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2  
You do know that there's IDEs (e.g. Eclipse) that automate this process for you, right? –  user1329572 Aug 23 '12 at 11:51
1  
@user1329572 in a lot of situations you'll want the build to be achievable without the IDE. If you need Eclipse to build your code, there is a problem somewhere IMO (esp. in corporate environments). –  Romain Aug 23 '12 at 11:52
    
Please also post the output of running the jar command and the actual error/exception that you're seeing. –  ShiDoiSi Aug 23 '12 at 11:54
2  
@Romain: in that case, you would use a build tool, eg Ant. Building a corporate project from the command line without using a tool would be ludacris. –  Buffalo Aug 23 '12 at 11:54
1  
@Buffalo I cannot agree more. By blanket-covering by saying "The IDE does it for you" is not appropriate. In the end it's actually not even relevant to the question. –  Romain Aug 23 '12 at 11:57

2 Answers 2

If your resource files (images, etc ...) are stored in the jar file, you should access them with

inputstream = getClass()
              .getClassLoader()
              .getResourceAsStream("Path to your file in the jar file");
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1  
You should actually always refer to resources that can be found in the classpath in this way, instead of using straight-out Files. –  Romain Aug 23 '12 at 11:59
    
Heeeey. This could be my problem. I'm just using a File class to load them. I'll try this way. Thanks heaps guys. –  user1619203 Aug 23 '12 at 12:02
    
You're welcome :D –  phsym Aug 23 '12 at 12:06
    
Hey, so i adjusted my code to this: InputStream is = getClass()......AsStream("file.txt"); BufferedReader br = new BufferedReader(new InputStreamReader(is)); However it still can not find the file. Am I still doing something wrong? –  user1619203 Aug 23 '12 at 12:29
    
Wait, i think its because i was checking to see if the file existed first, but i removed that and it seems to work... :) –  user1619203 Aug 23 '12 at 12:31

You have a classpath problem. When you launch the JAR in your project directory, in fact you are reading resources from the filesystem, not from the archive.

To read resources from the classpath use Class.getResourceAsStream(String)

InputStream in = getClass().getResourceAsStream("/images/foo.png");

And put foo.png inside an images directory in the final archive like you already do. Note the leading slash in /images/foo.png . Quoting the doc

An absolute resource name is constructed from the given resource name using this algorithm:

  1. If the name begins with a '/' ('\u002f'), then the absolute name of the resource is the portion of the name following the '/'.

  2. Otherwise, the absolute name is of the following form: modified_package_name/name Where the modified_package_name is the package name of this object with '/' substituted for '.' ('\u002e').

If you don't want to use an IDE to build your project, there are tools like Ant and Maven.

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2  
getClass().getClassLoader().getResourceAsStream("..."); is better I think. I already met the case where resource file access didn't work properly with only getClass().getResourceAsStream("..."); (actually, I don't really know why) –  phsym Aug 23 '12 at 12:04
1  
According to the doc there should be no difference. Can you provide the code to show a different behavior? I've always used the Class method since it saves typing :P –  Raffaele Aug 23 '12 at 12:08
    
It's an old code, but I'll try to find it tonight and post it here –  phsym Aug 23 '12 at 12:11

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