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I have a .jar file I'm putting together. I want to create a really really simple .properties file with configurable things like the user's name & other stuff, so that they can hand-edit rather than my having to include a GUI editor.

What I'd like to do is to be able to search, in this order:

  1. a specified properties file (args[0])
  2. in the current directory (the directory from which Java was called)
  3. in the user's directory (the user.home system property?)
  4. in the directory where the application .jar is stored

I know how to access #1 and #3 (I think), but how can I determine at runtime #2 and #4?

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3 Answers 3

up vote 6 down vote accepted

#2 is the "user.dir" system property. #3 is the "user.home" property.

#4 is a bit of a kludge no matter how you approach it. Here's an alternate technique that works if you have a class loaded from a JAR not on the system classpath.

CodeSource src = MyClass.class.getProtectionDomain().getCodeSource();
if (src != null) {
  URL url = new URL(src.getLocation(), "");
else {
  /* Fail... */
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works very nicely. :-) thanks! – Jason S May 28 '09 at 22:20
@erickson it works! but if I have inside a jar and in the external directory(not inside any package). Then how to read it? – Achyut Oct 1 '13 at 16:23

For 4, you could try this. Get the classpath:

String classpath = System.getProperty("java.class.path");

Then search it for the name of your application jar:

int jarPos = classpath.indexOf("application.jar");

Parse out the path leading up to it:

int jarPathPos = classpath.lastIndexOf(File.pathSeparatorChar, jarPos) + 1;
String path = classpath.substring(jarPathPos, jarPos);

Then append Make sure to check for jarPos == -1, meaning the jar isn't found if the classpath (perhaps when running in your dev environment).

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Been searching for this for 1 week, everywhere they said use Main.class.getProtectionDomain().getCodeSource(), which DOES NOT WORK!!! at least not on Mac from inside the Contents of an .app file... But this finally solved my problem... Thank you a lot... – Mostafa Zeinali Jul 21 '12 at 7:32

For the current working directory:

new File(".");

For a file named in the current directory:

new File(new File("."), "");
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That works, but even shorter is to pass empty string (new File("")) – StaxMan Apr 22 '09 at 3:22
I learned something! Thanks :) – Steve Reed Apr 22 '09 at 5:20

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