18

I'm using IntelliJ IDEA 13.1.5, I used to work with Eclipse. I'm working on JavaFX application, I try to load FXML file within my MainApp class using getClass().getResource(). I read the documentation and I try several idea, at the end I have null.

This is the hierarchy :

dz.bilaldjago.homekode.MainApp.java

dz.bilaldjago.homekode.view.RootLayout.FXML

This is the code snippet I used:

FXMLLoader loader = new FXMLLoader();
loader.setLocation(getClass().getResource("view/RootLayout.fxml"));

I tried other solution such giving the url from the root and using the classLoader

the result is the same. Any idea please

18

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

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

Recompile & rejoice :P Hope this working for you~

  • simple but worked for miiii :D – truongnm Mar 4 '17 at 7:47
  • did not work for me, i changed the Compiler resource patterns. Made the resource folder both as the root folder of my project and then the working folder where my Class is and still didn't work! please help. I am using intellij – Metin Dagcilar Dec 20 '17 at 0:11
  • @AVERAGE Hi, I don't think that would be a problem. Have you tried re-creating a project, and redo your operation? If it still doesn't work, please post your detailed operation steps. That would be helpful for solving your issue. – MewX Dec 28 '17 at 10:25
16

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.

  • 2
    I add fxml files using this pattern ?*.fxml but the result is the same! – BilalDja Oct 12 '14 at 18:13
  • Why "?*.fxml" and not "*.fxml" or "view:*" - all files and folders within the directory view. see : jetbrains.com/idea/webhelp/compiler.html#pattern – stacky Oct 12 '14 at 18:21
  • I follow the same pattern exist in the Resources field – BilalDja Oct 12 '14 at 20:27
  • 4
    it doesn't make any change! – BilalDja Oct 12 '14 at 20:31
  • 2
    @BilalDja did you manage to fix this problem? As i am experiencing the same issue right now – Metin Dagcilar Dec 20 '17 at 0:09
3

if your project is a maven project, check the target code to see whether your .fxml file exist there. if it's not there ,just add

<resources>
        <resource>
            <directory>src/main/java</directory>
            <includes>
                <include>**/*.xml</include>
            </includes>
            <filtering>true</filtering>
        </resource>
    </resources>

in your pom.xml

  • 1
    Other than the methods mentioned above, this is a key point if use Maven. Never forget to load the pom.xml file and write the resource node in build node. – Sinri Edogawa Jul 24 '18 at 8:05
  • applies to Kotlin as well. – Lenin Raj Rajasekaran Apr 16 at 2:05
-1

I gave up trying to use getClass().getResource("BookingForm.css"));

Instead I create a File object, create a URL from that object and then pass it into getStyleSheets() or setLocation() File file = new File(System.getProperty("user.dir").toString() + "/src/main/resources/BookingForm.css");

scene.getStylesheets().add(folder.toURI().toURL().toExternalForm());

-1

Windows is case-sensitive, the rest of the world not. Also an executable java jar (zip format) the resource names are case sensitive.

Best rename the file

view/RootLayout.FXML

to

view/RootLayout.fxml

This must be done by moving the original file away, and creating a new one.

Also compile to a jar, and check that the fxml file was added to the jar (zip file). When not IntelliJ resource paths are treated by an other answer.

By the way this is path relative to the package path of getClass(). Be aware if you extended this class the full path changes, better use:

MainApp.class.getResource("view/RootLayout.fxml")

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