48

I am using the following to get the URL of this particular file, but it returns null. Does anyone have any suggestions as to the problem or an alternate way to do this?

URL url = ExchangeInterceptor.class.getResource("GeoIP.dat");

15 Answers 15

47

For those who use Intellij Idea: check for Settings -> Compiler -> Resource patterns.

The setting contains all extensions that should be interpreted as resources. If an extension does not comply to any pattern here, class.getResource will return null for resources using this extension.

  • 3
    I've been using IDEA for more than 10 years and never even knew about this setting. Thank you! – Donald.McLean Jan 21 '14 at 17:28
  • 12
    This answer is not applicable to Maven projects – Sym-Sym Feb 19 '15 at 22:18
  • 1
    @Sam What would be the solution for maven projects? – maja Apr 11 '15 at 19:11
  • 5
    In case anybody is having trouble finding it, these days the setting is located at Settings ▶ Build, Execution, Deployment ▶ Compiler ▶ Resource patterns – Simon Morgan Apr 15 '16 at 14:40
  • 2
    @maja For maven projects you have to add resource includes like so maven.apache.org/plugins/maven-resources-plugin/examples/… - That did the trick for me. – AdrianVeidt Dec 11 '17 at 9:58
29

The path is relative to the classpath root and if you don't give an absolute path, it is looking in the same package as the class you're using (in this case ExchangeInterceptor). To find something in the root use /GeoIP.dat.

  • 3
    This is really the answer. Everything else is just a bit nonsensical. Except maybe for IntelliJ hint. – Schultz9999 Jan 5 '15 at 21:57
19

Use the getResource method of the class' ClassLoader

URL url = ExchangeInterceptor.class.getClassLoader().getResource("GeoIP.dat");
9

I solved this problem by pointing out the resource root on IDEA.

Initially the directory was so and the icon was a plain folder icon

Before

enter image description here

Right click on a directory (or just the project name) -> Mark directory As -> Resource Root.

After

after

Recompile & rejoice :P

4

No, that is the right way afaik. Make sure the resource is on your classpath. This is often the cause of these types of problems.

4

If you're using Gradle and IntelliJ, and changing Resource patterns didn't work, and your resource roots are set correctly...you can try this:

enter image description here

Settings > Build, Execution, Delpoyment > Build Tools > Gradle > Runner > Delegate IDE build/run actions to gradle. (IntelliJ 2017.3.3)

Source: https://youtrack.jetbrains.com/issue/IDEA-176738#comment=27-2518612

  • BTW, looking back on this now...I don't necessarily know that I'd recommend this as a good solution, as the Gradle integration in this case seems rough. But if it works for you, great. – Max Apr 25 '18 at 21:49
3

Just in case someone still has problems to understand that:

.getResource() grants you access to the local bin folder. That means, your resources need to be located in YourProject/bin/package/. The root folder is YourProject/bin/ and can be accssed by adding the prefix / to the String argument, like iirekm said.

  • 4
    It does not point to a specific folder at all. It just points to the classpath. You should see it the other way round: the bin folder which you're talking about is part of the runtime classpath. – BalusC Apr 22 '12 at 23:15
  • well, I've tried to use the same method too and got the same error as the original poster. I fixed it by adding the files to the paths I mentioned, so I thought I should share this "discovery" – merovin Apr 22 '12 at 23:45
  • 2
    You just discovered one of the paths of the classpath. OP has it already in the classpath, OP was just accessing it with the wrong path. – BalusC Apr 23 '12 at 1:10
3

While using IntelliJ, I generated the project as a JavaFX app and then added maven framework support to it. Turns out, I then placed my resource in src/main/resources and had to add ./ behind every resource name that while using them in the code.

Also as stated in a previous answer, only loading the resource by a classLoader worked.

So for me, the final URL loading was done using:

URL url = getClass().getClassLoader().getResource(String.format(".%ssample.fxml", File.separatorChar));

The File.separatorChar returns / on *nix and \ on windows.

2

I've faced with the similar problem. From Java SE API for getResource​(String name) :

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

So I've added '/' before my directory : MyClass.class.getResource("/dir_name/").

In your case try to add '/' before your file name:

URL url = ExchangeInterceptor.class.getResource("/GeoIP.dat");

1

Where do you have put this GeoIP.dat? In the same package as ExchangeInterceptor, or in the "root" package. If in the same package, your code is OK, if in the root - add '/' prefix.

Maybe you're using M2Eclipse? If configured incorrectly, it also may result in such problems. Another cause of such problems may be: misconfigured classloaders, misconfigured OSGi, ...

1

The file needs to be in the classpath, e.g.: -

bin/my/package/GeoIP.dat

The / prefix seems to be a lie. The following would work.

URL url = ExchangeInterceptor.class.getResource("my/package/GeoIP.dat");

I suspect the issue is that you do not have the file in the classpath.

0

Instead of having the resource file in the same folder as your source files, create a resources folder parallel to the java source folder.

Before:

  • src
    • main
      • java
        • MyClass.java
        • file.bin
        • file.txt

After:

  • src
    • main
      • java
        • MyClass.java
      • resources
        • file.bin
        • file.txt
0

This is my example solution. Work for me.

The project structure:

•   Source Packages
   •    game
       •    Game.java
   •    game.images
       •    tas_right.png

In the game class:

URL path=this.getClass().getClassLoader().getResource("images/tas_right.png")
-3

First, you need to make sure you are accessing the right file on the right path. You can verify that by getClass().getResource("GeoIP.dat").getAbsolutePath().

Secondly, the path specifier is case-sensitive, so make sure your file is not named "geoIP.dat" or "GeoIP.DAT".

  • 3
    You will get NullRef because getResource returns null, remember? – Schultz9999 Jan 5 '15 at 21:58
-3

In case of eclipse.

Just a hint. Your code could be correct, but your jre configuration not. I ran into the the same error, nothing helped, until i checked the eclipse settings.

Make sure, that you set your execution environment right.

Preferences -> Java -> Installed JREs -> use "jdk..." as compatible JRE 
  • This doesn't really address the original question or explain why it would help with the OP issue. – Martin Serrano Mar 24 '14 at 15:25

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