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I use this code in my program to load a properties file:

Properties properties = new Properties();
URL url = new App().getClass().getResource(PROPERTIES_FILE);
properties.load(url.openStream());

The code runs fine in Eclipse. Then I package the program into a JAR named MyProgram.jar, and run it, I got a NullPointerException at the second line. The JAR doesn't contain the properties file, they both are in the same directory. I am using Maven to create the JAR. How can I fix this problem?

UPDATE: I don't want to add the properties file to the JAR, since it will be created at deployment time.

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2  
Side note: Is there any reason you're using getResource() instead of getResourceAsStream(), since you're just using it as a stream anyway? –  Powerlord Nov 8 '10 at 16:55
1  
No, I don't have any particular reason. –  Hai Minh Nguyen Nov 8 '10 at 16:57
    
How do you run your jar? If via java -jar, can you try java -cp ./MyProgram.jar <classname> and see if it works? –  Tomer Gabel Nov 8 '10 at 16:58
    
@Tomer: that's a workaround, not a solution. Still, it won't work. You aren't taking the root folder of the JAR in the classpath. –  BalusC Nov 8 '10 at 17:00
    
@Hai: Why did you remove the maven tag? You commented on my answer "Do you know how to add it via maven?". So you're using maven and since it's doing things differently, the final answer depends on that. I don't know how, so I deleted the answer and retagged the question for better attendance. Maven guys are the only who can reliably answer this question. –  BalusC Nov 8 '10 at 17:29

4 Answers 4

up vote 14 down vote accepted

BalusC is right, you need to instruct Maven to generate a MANIFEST.MF with the current directory (.) in the Class-Path: entry.

Assuming you're still using the Maven Assembly Plugin and the jar-with-dependencies descriptor to build your executable JAR, you can tell the plugin to do so using the following:

  <plugin>
    <artifactId>maven-assembly-plugin</artifactId>
    <version>2.2</version>
    <configuration>
      <descriptorRefs>
        <descriptorRef>jar-with-dependencies</descriptorRef>
      </descriptorRefs>
      <archive>
        <manifest>
          <mainClass>com.stackoverflow.App</mainClass>
        </manifest>
        <manifestEntries>
          <Class-Path>.</Class-Path> <!-- HERE IS THE IMPORTANT BIT -->
        </manifestEntries>
      </archive>
    </configuration>
    <executions>
      <execution>
        <id>make-assembly</id> <!-- this is used for inheritance merges -->
        <phase>package</phase> <!-- append to the packaging phase. -->
        <goals>
          <goal>single</goal> <!-- goals == mojos -->
        </goals>
      </execution>
    </executions>
  </plugin>
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If you're not using the maven assembly plugin, let me know and I'll update my answer. –  Pascal Thivent Nov 9 '10 at 5:33
    
With the executions section, I don't have to run mvn assembly:assembly separately right? By the way, thanks for answering all my questions on Maven. –  Hai Minh Nguyen Nov 9 '10 at 7:38
    
@HaiMinhNguyen: Indeed, the above execution binds the single goal on the package phase. As a result, running mvn package does create the assembly. Oh, and you're welcome. –  Pascal Thivent Nov 9 '10 at 7:42
    
Yes, this is the approach you should take, Hai Minh Nguyen. –  BalusC Nov 9 '10 at 12:04
3  
Hello, I tried using the above method to create a jar-with-depencies that could load a properties file located in the same directory but it does not work. I run my jar using "java -jar myjar.jar". I tried retrieving the properties file using both Class.getResource() Class.ClassLoader.getResource(), with and without a leading slash in the file name, but none of these work. If i println the content of java.class.path, I only get my jar file (no ".", though it is correctly set in the MANIFEST's Class-Path). Could someone help me please? –  Nebelmann Sep 22 '11 at 12:27

There are two workarounds:

  1. Don't use the JAR as executabele JAR, but as library.

    java -cp .;filename.jar com.example.YourClassWithMain
    
  2. Obtain the root location of the JAR file and get the properties file from it.

    URL root = getClass().getProtectionDomain().getCodeSource().getLocation();
    URL propertiesFile = new URL(root, "filename.properties");
    Properties properties = new Properties();
    properties.load(propertiesFile.openStream());
    

None of both are recommended approaches! The recommend approach is to have the following entry in JAR's /META-INF/MANIFEST.MF file:

Class-Path: .

Then it'll be available as classpath resource the usual way. You'll really have to instruct Maven somehow to generate the MANIFEST.MF file like that.

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Oops I tried the first option before but I used . COMMA filename.jar. Maybe that's why it didn't work. Thanks for your help. –  Hai Minh Nguyen Nov 8 '10 at 19:52
    
BalusC is the man. –  lscoughlin Nov 9 '10 at 6:52
    
It's a bit late but congrats for the 100K! –  Pascal Thivent Nov 9 '10 at 7:43
    
ah, i missed that event too. Congrats BalusC –  JoseK Nov 9 '10 at 8:13
    
@Iscoughlin, @Pascal and @Jose: thanks :) –  BalusC Nov 9 '10 at 12:05

EDIT: this is to respond to your comment:

You need to make sure that the properties file is on the class path with the right root for the java invocation that stars up the jar file. if your path is

stuff/things.properties

and the runtime location is

/opt/myapp/etc/stuff/things.properties

and the jar file is in

/opt/myapp/bin/myjar

then you need to launch as

/path/to/java -cp "/opt/myapp/etc:/opt/myapp/bin/myjar.jar" my.pkg.KavaMain

working with this kind of config can be irksome in a dev environment, luckily, there's the maven exec plugin that will get you the right kind of launch scenario.

Original Answer:

You want to read about the maven resources plugin.

Basically you want to add something like this:

<plugin>
        <artifactId>maven-jar-plugin</artifactId>
        <configuration>
                <resources>
                        <resource>
                                <directory>src/main/java</directory>
                                <includes>
                                        <include>**/*properties</include>
                                </includes>
                        </resource>
                </resources>
        </configuration>
<plugin>

to your pom.xml assuming that you're propertis file is with your java sources -- really it should be in src/main/resources.

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Thanks, but I don't want to add the properties file to the JAR. It will be changed at deployment time. –  Hai Minh Nguyen Nov 8 '10 at 17:41
    
As per your edit: the -cp argument is ignored when using -jar argument. It has really to go in MANIFEST.MF file :) –  BalusC Nov 8 '10 at 18:11
    
@BalusC righto, fixed up. Can't go in the MANIFEST.MF if it could move at runtime. –  lscoughlin Feb 23 '12 at 21:02

I had a similar problem, and this thread was a big help! FYI, I modified my Ant buildfile to do the MANIFEST-making, then designated that manifest when JAR-ing my server-side code:

<!-- Create a custom MANIFEST.MF file, setting the classpath. -->
<delete file="${project.base.dir}/resources/MANIFEST.MF" failonerror="false"/>
<manifest file="${project.base.dir}/resources/MANIFEST.MF">
  <attribute name="Class-Path" value="." />
</manifest>

<!-- JAR the server-side code, using the custom manifest from above. -->
<jar destfile="services/${name}.aar" manifest="${project.base.dir}/resources/MANIFEST.MF">
[....]
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