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I'm using a properties file:

try 
{
    properties.load(new FileInputStream("filename.properties"));
} 
catch (IOException e) 
{
}

Where should I place filename.properties? I don't want to specify absolute path as this code has to work in different platforms. I tried to place it in the same directory as de class but it doesn't work. (Sorry if it's a stupid question)

Maybe I can get the path where the current class is placed somehow?

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up vote 3 down vote accepted

be sure that your property file is available to your compiled (.class) file and get it this way

getClass().getResource("filename.properties") // you get an URL, then openStream it

or

getClass().getResourceAsStream("filename.properties") // you get an InputStream

Example:

import java.net.URL;
public class SampleLoad {
    public static void main(String[] args) {
        final URL resource = SampleLoad.class.getResource("SampleLoad.class");
        System.out.println(resource);
    }
}

this main retrieves its own compiled version at runtime:

file:/C:/_projects/toolbox/target/classes/org/game/toolbox/SampleLoad.class

share|improve this answer
    
Ok it works, but I have to remove 'file:/' from that path, so I have to replace "new FileInputStream(filename.properties)" in my code with: FileInputStream(resource.toString().substring("file:/".length(),resource.toStri‌​ng().length()))); ` – de3 May 11 '11 at 15:28
1  
@de3, use @Guillaume's second form, getResourceAsStream(*). It will continue to work even if you ship your classes in a jar. – Paul Webster May 11 '11 at 19:27

You could use : String userDir = System.getProperty("user.dir");

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