1268

I want to access my current working directory using Java.

My code:

 String currentPath = new java.io.File(".").getCanonicalPath();
 System.out.println("Current dir:" + currentPath);

 String currentDir = System.getProperty("user.dir");
 System.out.println("Current dir using System:" + currentDir);

Output:

Current dir: C:\WINDOWS\system32
Current dir using System: C:\WINDOWS\system32

My output is not correct because the C drive is not my current directory.

How to get the current directory?

8
  • 3
    What is it you're trying to accomplish by accessing the working directory? Could it be done by using the class path instead? For example, if you need to read a text file on the file system, you can find it easily when it is on the class path. Feb 2, 2011 at 5:53
  • 1
    how? Could you elaborate please?
    – C graphics
    Oct 31, 2012 at 23:09
  • 17
    For debugging purposes, the working directory could be useful to know if the program doesn't seem to be able to access files that exist.
    – nsandersen
    Mar 17, 2016 at 13:49
  • 2
    Both methods (and the methods below) look correct. If you get the system directory as CWD then this might be due to a wrapper doing a CD before starting Java. For example javapath might do this. Specify the path to java.exe to the actual Java_:home directory directly to avoid this.
    – eckes
    Nov 20, 2016 at 17:14
  • 3
    Bear in mind that one thing is the working directory, and other the directory whether your class resides. They usually aren't the same. Mar 24, 2018 at 15:22

26 Answers 26

1385

Code :

public class JavaApplication {
  public static void main(String[] args) {
    System.out.println("Working Directory = " + System.getProperty("user.dir"));
  }
}

This will print the absolute path of the current directory from where your application was initialized.


Explanation:

From the documentation:

java.io package resolve relative pathnames using current user directory. The current directory is represented as system property, that is, user.dir and is the directory from where the JVM was invoked.

12
  • 28
    @ubuntudroid: that's why i mentioned specifically that it will print the path from where the application had initialized. My guess the thread starter directly run the jar/program after starting commnad prompt (which is basically at C:\WINDOWS\system32). I hope you understand my point. Assuming you downvoted, appreciate that at least you cared to leave a response. :)
    – Anuj Patel
    Oct 29, 2012 at 14:20
  • 2
    user.dir will get the path to the folder wherein the process was launched. To get the actual path to the application's main folder see my answer below. May 15, 2013 at 14:31
  • 1
    I mean "all code relying on it to find the current directory fails.". Not all code in general. (I was to slow to edit the original comment)
    – SubOptimal
    Dec 30, 2014 at 12:55
  • 13
    @SubOptimal if user setted -Duser.dir, propable he want to run this in custom working directory.
    – barwnikk
    Apr 18, 2015 at 18:58
  • 7
    @indyaah infact this answer is wrong, there is a subtle difference between a user-working-directory and a current-working-directory of a system process (cwd); most of time the "user.dir" points to the cwd of a (java)process; but "user.dir" has different semantics and shall not be used to obtain the cwd of a java process; btw:there are more properties available to java process docs.oracle.com/javase/tutorial/essential/environment/… just for reference May 30, 2015 at 10:10
491

See: Path Operations (The Java™ Tutorials > Essential Classes > Basic I/O).

Using java.nio.file.Path and java.nio.file.Paths, you can do the following to show what Java thinks is your current path. This for 7 and on, and uses NIO.

Path currentRelativePath = Paths.get("");
String s = currentRelativePath.toAbsolutePath().toString();
System.out.println("Current absolute path is: " + s);

This outputs:

Current absolute path is: /Users/george/NetBeansProjects/Tutorials

that in my case is where I ran the class from.

Constructing paths in a relative way, by not using a leading separator to indicate you are constructing an absolute path, will use this relative path as the starting point.

4
  • 3
    The first one haven' t checked, but the second one will actually get your home folder. Not the current working directory in which the application is running. May 15, 2013 at 14:22
  • 17
    Please don't confuse the user's home directory ("user.home", /Users/george in your case) and the current working directory ("user.dir", which will be the directory from which you started the JVM for your application, so could be something like e.g. /Users/george/workspace/FooBarProject).
    – David
    Sep 20, 2013 at 10:19
  • 1
    I prefer this way. When I need the parent of the working directory, this does not work: Paths.get("").getParent(), it gives null. Instead this works: Paths.get("").toAbsolutePath().getParent().
    – Ole V.V.
    Oct 16, 2016 at 8:47
  • If you need to get the parent of the current directory just use the "..". example: Paths.get("..").toAbsolutePath().normalize();
    – A.Casanova
    Feb 8 at 10:57
253

The following works on Java 7 and up (see here for documentation).

import java.nio.file.Paths;

Paths.get(".").toAbsolutePath().normalize().toString();
6
  • 11
    How is this better than the more portable import java.io.File; File(".").getAbsolutePath() ? Jun 1, 2016 at 15:20
  • 9
    When you say portable, you mean it works in Java 6 and earlier? Paths.get() may be considered better in that it gives direct access to the more powerful Path interface.
    – Ole V.V.
    Oct 16, 2016 at 8:56
  • 10
    What is the potential advantage of using .normalize() in this context?
    – Ole V.V.
    Oct 16, 2016 at 8:58
  • 8
    @OleV.V. From Javadoc: (normalize method) Returns a path that is this path with redundant name elements eliminated.
    – Stephan
    May 21, 2017 at 17:46
  • What's the significance of . (dot)? does it matter if we omit the dot?
    – YaMiN
    Feb 3 at 3:57
80

This will give you the path of your current working directory:

Path path = FileSystems.getDefault().getPath(".");

And this will give you the path to a file called "Foo.txt" in the working directory:

Path path = FileSystems.getDefault().getPath("Foo.txt");

Edit : To obtain an absolute path of current directory:

Path path = FileSystems.getDefault().getPath(".").toAbsolutePath();

* Update * To get current working directory:

Path path = FileSystems.getDefault().getPath("").toAbsolutePath();
4
  • 14
    this just returns '.' for me. Feb 1, 2018 at 0:53
  • 3
    Yes, in many systems that will be the reference to the working directory. To get the absolute path you can add one more method call Path path = FileSystems.getDefault().getPath(".").toAbsolutePath();
    – Mark
    Feb 1, 2018 at 19:49
  • 2
    You don't need the foo.txt, just put in an empty string to get the directory Mar 5, 2018 at 2:41
  • 1
    On Windows (10) this just gives me a Path object pointing to a file called . inside the current working dir. Using an empty string, rather than "." worked for me.
    – Kröw
    Apr 18, 2019 at 6:32
70

Java 11 and newer

This solution is better than others and more portable:

Path cwd = Path.of("").toAbsolutePath();

Or even

String cwd = Path.of("").toAbsolutePath().toString();
4
  • This is exactly the same as the answer from comeGetSome and is actually the Java <7 way
    – GoGoris
    Jan 3, 2020 at 14:59
  • 2
    it should be Path cwd = Paths.get("").toAbsolutePath(); Jun 19, 2020 at 10:25
  • 6
    Better to use Path.of, because Paths might get deprecated. Also, Paths.get just calls Path.of.
    – the Hutt
    Mar 29, 2021 at 2:12
  • @onkarruikar good point, I’ll update the answer
    – freedev
    Mar 29, 2021 at 5:57
36

This is the solution for me

File currentDir = new File("");
5
  • 1
    This has side effects when you use such a File object as a parent of another File: new File(new File(""), "subdir") will not work as expected
    – MRalwasser
    Oct 17, 2014 at 14:22
  • 17
    To fix this, use new File("").getAbsoluteFile() instead.
    – MRalwasser
    Oct 17, 2014 at 14:34
  • 4
    For what it's worth, I had better luck with File(".").
    – keshlam
    Dec 2, 2014 at 15:51
  • How To Define a Relative Path in Java This Page helped me. Also I assumed that I should use / when creating a relative path. I was wrong, don't start with /. ../ also works for going up in the directory tree. Feb 5, 2016 at 1:05
  • @keshlam That gave me a file in the current directory called ..
    – Kröw
    Jun 2, 2019 at 2:12
30

What makes you think that c:\windows\system32 is not your current directory? The user.dir property is explicitly to be "User's current working directory".

To put it another way, unless you start Java from the command line, c:\windows\system32 probably is your CWD. That is, if you are double-clicking to start your program, the CWD is unlikely to be the directory that you are double clicking from.

Edit: It appears that this is only true for old windows and/or Java versions.

1
  • 3
    This doesn't seem to be true, at least not on my Windows 7 machine using Java 7. user.dir is consistently the folder where I double-clicked the jar file.
    – Jolta
    Feb 25, 2015 at 9:40
26

Use CodeSource#getLocation().

This works fine in JAR files as well. You can obtain CodeSource by ProtectionDomain#getCodeSource() and the ProtectionDomain in turn can be obtained by Class#getProtectionDomain().

public class Test {
    public static void main(String... args) throws Exception {
        URL location = Test.class.getProtectionDomain().getCodeSource().getLocation();
        System.out.println(location.getFile());
    }
}
1
  • 4
    This returns the location of the JAR file. Not what was asked for.
    – user207421
    Oct 1, 2017 at 2:13
24
this.getClass().getClassLoader().getResource("").getPath()
3
  • 13
    Throws a NPE when I launch my application from a JAR file by double-clicking it. Aug 2, 2013 at 16:34
  • 2
    This returns "" if the application is running from a JAR file, or a CLASSPATH element. Not what was asked for.
    – user207421
    Oct 1, 2017 at 2:13
  • @Zizouz212 getClass() is an object method, so in a static context just removing the this doesn't work. You'd have to explicitly refer to the class you're in by doing MyClass.class.getClassLoader()......
    – Kröw
    Jun 2, 2019 at 2:14
19

generally, as a File object:

File getCwd() {
  return new File("").getAbsoluteFile();
}

you may want to have full qualified string like "D:/a/b/c" doing:

getCwd().getAbsolutePath()
3
  • 1
    This works well in Android tests since Android doesn't include java.nio.file.Files.
    – iamreptar
    Sep 29, 2015 at 6:15
  • Doesn't seem to work for me in a static context (new File("") throws NullPointerException)..?
    – nsandersen
    Mar 17, 2016 at 13:54
  • 3
    @nsandersen you probably used a wrong File object: System.out.println(new java.io.File("").getAbsolutePath()); Mar 24, 2016 at 12:38
15

I'm on Linux and get same result for both of these approaches:

@Test
public void aaa()
{
    System.err.println(Paths.get("").toAbsolutePath().toString());

    System.err.println(System.getProperty("user.dir"));
}

Paths.get("") docs

System.getProperty("user.dir") docs

7

I hope you want to access the current directory including the package i.e. If your Java program is in c:\myApp\com\foo\src\service\MyTest.java and you want to print until c:\myApp\com\foo\src\service then you can try the following code:

String myCurrentDir = System.getProperty("user.dir")
            + File.separator
            + System.getProperty("sun.java.command")
                    .substring(0, System.getProperty("sun.java.command").lastIndexOf("."))
                    .replace(".", File.separator);
    System.out.println(myCurrentDir);

Note: This code is only tested in Windows with Oracle JRE.

4
  • 7
    It would be disservice not to downvote this answer. Please think more carefully before posting. Your code is broken, unless all these are true: 1. the JRE is Oracle's, otherwise there will be no "sun.java.command" system property → NPE; 2. the OS is Windows (Use File.separator instead, or a multi-argument File constructor); 3. the classpath is specificed on the command line, and the 'current directory including the package'(??) is: a. specified first, b. specified absolutely, c. matches the CWD exactly (even with Windows' case insensitivity), and d. is a descendent of the CWD May 15, 2013 at 2:43
  • That addresses points 1 and 2. But unless I'm missing something, you're still relying on the classpath being specified in the command line (i.e. not in an environment variable), and for the 'current directory including the package' (I admit I don't really understand what you mean by that) being a descendent of specifically the first element in the classpath. And the case matching problem remains. I'm sorry if my comment wasn't helpful; I sacrificed clarity to keep within the comment character limit. Jun 6, 2013 at 4:17
  • @Inversus, it only "works perfectly" in some environments; you just happened to be lucky enough to test it in onesuch. Writing software that fails in legitimate runtime environments is not good practice, even when your set of test environments isn't expansive enough to include them. Apr 10, 2014 at 2:07
  • @CharlesDuffy You're right, that is not good practice. Fortunately, this solution "solv[ing] my specific issue" did not cause it to "[fail] in legitimate runtime environments." In fact, it helped me solve such a failure and write more robust code, besides solving the very specific issue I had (which was only somewhat related to this question/answer). I guess I was just lucky to find it.
    – Inversus
    Apr 24, 2014 at 23:32
5

On Linux when you run a jar file from terminal, these both will return the same String: "/home/CurrentUser", no matter, where youre jar file is. It depends just on what current directory are you using with your terminal, when you start the jar file.

Paths.get("").toAbsolutePath().toString();

System.getProperty("user.dir");

If your Class with main would be called MainClass, then try:

MainClass.class.getProtectionDomain().getCodeSource().getLocation().getFile();

This will return a String with absolute path of the jar file.

2
  • 5
    Which is not what was asked for.
    – user207421
    Oct 1, 2017 at 2:14
  • This answer is not to be taken literally.
    – daveloyall
    Nov 8, 2021 at 22:33
5

Using Windows user.dir returns the directory as expected, but NOT when you start your application with elevated rights (run as admin), in that case you get C:\WINDOWS\system32

4

Mention that it is checked only in Windows but i think it works perfect on other Operating Systems [Linux,MacOs,Solaris] :).


I had 2 .jar files in the same directory . I wanted from the one .jar file to start the other .jar file which is in the same directory.

The problem is that when you start it from the cmd the current directory is system32.


Warnings!

  • The below seems to work pretty well in all the test i have done even with folder name ;][[;'57f2g34g87-8+9-09!2#@!$%^^&() or ()%&$%^@# it works well.
  • I am using the ProcessBuilder with the below as following:

🍂..

//The class from which i called this was the class `Main`
String path = getBasePathForClass(Main.class);
String applicationPath=  new File(path + "application.jar").getAbsolutePath();


System.out.println("Directory Path is : "+applicationPath);

//Your know try catch here
//Mention that sometimes it doesn't work for example with folder `;][[;'57f2g34g87-8+9-09!2#@!$%^^&()` 
ProcessBuilder builder = new ProcessBuilder("java", "-jar", applicationPath);
builder.redirectErrorStream(true);
Process process = builder.start();

//...code

🍂getBasePathForClass(Class<?> classs):

    /**
     * Returns the absolute path of the current directory in which the given
     * class
     * file is.
     * 
     * @param classs
     * @return The absolute path of the current directory in which the class
     *         file is.
     * @author GOXR3PLUS[StackOverFlow user] + bachden [StackOverFlow user]
     */
    public static final String getBasePathForClass(Class<?> classs) {

        // Local variables
        File file;
        String basePath = "";
        boolean failed = false;

        // Let's give a first try
        try {
            file = new File(classs.getProtectionDomain().getCodeSource().getLocation().toURI().getPath());

            if (file.isFile() || file.getPath().endsWith(".jar") || file.getPath().endsWith(".zip")) {
                basePath = file.getParent();
            } else {
                basePath = file.getPath();
            }
        } catch (URISyntaxException ex) {
            failed = true;
            Logger.getLogger(classs.getName()).log(Level.WARNING,
                    "Cannot firgue out base path for class with way (1): ", ex);
        }

        // The above failed?
        if (failed) {
            try {
                file = new File(classs.getClassLoader().getResource("").toURI().getPath());
                basePath = file.getAbsolutePath();

                // the below is for testing purposes...
                // starts with File.separator?
                // String l = local.replaceFirst("[" + File.separator +
                // "/\\\\]", "")
            } catch (URISyntaxException ex) {
                Logger.getLogger(classs.getName()).log(Level.WARNING,
                        "Cannot firgue out base path for class with way (2): ", ex);
            }
        }

        // fix to run inside eclipse
        if (basePath.endsWith(File.separator + "lib") || basePath.endsWith(File.separator + "bin")
                || basePath.endsWith("bin" + File.separator) || basePath.endsWith("lib" + File.separator)) {
            basePath = basePath.substring(0, basePath.length() - 4);
        }
        // fix to run inside netbeans
        if (basePath.endsWith(File.separator + "build" + File.separator + "classes")) {
            basePath = basePath.substring(0, basePath.length() - 14);
        }
        // end fix
        if (!basePath.endsWith(File.separator)) {
            basePath = basePath + File.separator;
        }
        return basePath;
    }
2
  • This returns the location of the JAR file. Not what was asked for.
    – user207421
    Oct 1, 2017 at 2:14
  • @EJP The location of the .jar file isn't the current working directory of the java program?
    – GOXR3PLUS
    Oct 5, 2017 at 22:36
2

assume that you're trying to run your project inside eclipse, or netbean or stand alone from command line. I have write a method to fix it

public static final String getBasePathForClass(Class<?> clazz) {
    File file;
    try {
        String basePath = null;
        file = new File(clazz.getProtectionDomain().getCodeSource().getLocation().toURI().getPath());
        if (file.isFile() || file.getPath().endsWith(".jar") || file.getPath().endsWith(".zip")) {
            basePath = file.getParent();
        } else {
            basePath = file.getPath();
        }
        // fix to run inside eclipse
        if (basePath.endsWith(File.separator + "lib") || basePath.endsWith(File.separator + "bin")
                || basePath.endsWith("bin" + File.separator) || basePath.endsWith("lib" + File.separator)) {
            basePath = basePath.substring(0, basePath.length() - 4);
        }
        // fix to run inside netbean
        if (basePath.endsWith(File.separator + "build" + File.separator + "classes")) {
            basePath = basePath.substring(0, basePath.length() - 14);
        }
        // end fix
        if (!basePath.endsWith(File.separator)) {
            basePath = basePath + File.separator;
        }
        return basePath;
    } catch (URISyntaxException e) {
        throw new RuntimeException("Cannot firgue out base path for class: " + clazz.getName());
    }
}

To use, everywhere you want to get base path to read file, you can pass your anchor class to above method, result may be the thing you need :D

Best,

2
  • 2
    This returns the location of the JAR file. Not what was asked for.
    – user207421
    Oct 1, 2017 at 2:14
  • 1
    @user207421 yes I know this answer is not the true answer for the question, but most of time, everybody want to get the "directory where the jars located" instead of "command line working directory".
    – bachden
    Mar 31, 2019 at 10:23
1

For Java 11 you could also use:

var path = Path.of(".").toRealPath();
0

Current working directory is defined differently in different Java implementations. For certain version prior to Java 7 there was no consistent way to get the working directory. You could work around this by launching Java file with -D and defining a variable to hold the info

Something like

java -D com.mycompany.workingDir="%0"

That's not quite right, but you get the idea. Then System.getProperty("com.mycompany.workingDir")...

3
  • 9
    Not relevant to the question. May 15, 2013 at 14:28
  • 1
    It does have a meaning to Java - it's the location on disk where files that you open with relative pathnames are relative to.
    – Rob I
    Jul 29, 2013 at 16:36
  • 2
    Yes, it has a meaning. My words were somewhat poorly chosen. But you miss the point - prior to Java 7 there was no way to know the current working directory, and different implementations set them...differently...
    – MJB
    Jun 25, 2014 at 3:59
0

This is my silver bullet when ever the moment of confusion bubbles in.(Call it as first thing in main). Maybe for example JVM is slipped to be different version by IDE. This static function searches current process PID and opens VisualVM on that pid. Confusion stops right there because you want it all and you get it...

  public static void callJVisualVM() {
    System.out.println("USER:DIR!:" + System.getProperty("user.dir"));
    //next search current jdk/jre
    String jre_root = null;
    String start = "vir";
    try {
        java.lang.management.RuntimeMXBean runtime =
                java.lang.management.ManagementFactory.getRuntimeMXBean();
        String jvmName = runtime.getName();
        System.out.println("JVM Name = " + jvmName);
        long pid = Long.valueOf(jvmName.split("@")[0]);
        System.out.println("JVM PID  = " + pid);
        Runtime thisRun = Runtime.getRuntime();
        jre_root = System.getProperty("java.home");
        System.out.println("jre_root:" + jre_root);
        start = jre_root.concat("\\..\\bin\\jvisualvm.exe " + "--openpid " + pid);
        thisRun.exec(start);
    } catch (Exception e) {
        System.getProperties().list(System.out);
        e.printStackTrace();
    }
}
1
  • 4
    You should write a book about this question. These 50 lines of code are not enough. Jul 18, 2020 at 3:13
0

This isn't exactly what's asked, but here's an important note: When running Java on a Windows machine, the Oracle installer puts a "java.exe" into C:\Windows\system32, and this is what acts as the launcher for the Java application (UNLESS there's a java.exe earlier in the PATH, and the Java app is run from the command-line). This is why File(".") keeps returning C:\Windows\system32, and why running examples from macOS or *nix implementations keep coming back with different results from Windows.

Unfortunately, there's really no universally correct answer to this one, as far as I have found in twenty years of Java coding unless you want to create your own native launcher executable using JNI Invocation, and get the current working directory from the native launcher code when it's launched. Everything else is going to have at least some nuance that could break under certain situations.

2
  • This was true long ago (when this Q was posted), but Microsoft discouraged apps changing system32, and since at least 2015 the Oracle Windows installers put their stub in either \programdata\Oracle\Java\javapath or \Program Files [(x86)]\Common Files\Oracle\Java\javapathas approved by MS Sep 16, 2020 at 7:17
  • Noticed that myself recently--good update! I think older installers (Java 1.8) will still do the original behavior, but definitely the behavior you cite is one I'm seeing from the more recent builds/installs. (Personally I dislike a global Java anywhere, but that's me.)
    – Ted
    May 14 at 22:42
0

Try something like this I know I am late for the answer but this obvious thing happened in java8 a new version from where this question is asked but..

The code

import java.io.File;

public class Find_this_dir {

    public static void main(String[] args) {

//some sort of a bug in java path is correct but file dose not exist
        File this_dir = new File("");

//but these both commands work too to get current dir        
//      File this_dir_2 = new File(this_dir.getAbsolutePath());
        File this_dir_2 = new File(new File("").getAbsolutePath());

        System.out.println("new File(" + "\"\"" + ")");
        System.out.println(this_dir.getAbsolutePath());
        System.out.println(this_dir.exists());
        System.out.println("");
        System.out.println("new File(" + "new File(" + "\"\"" + ").getAbsolutePath()" + ")");
        System.out.println(this_dir_2.getAbsolutePath());
        System.out.println(this_dir_2.exists());
    }
}

This will work and show you the current path but I don't now why java fails to find current dir in new File(""); besides I am using Java8 compiler...

This works just fine I even tested it new File(new File("").getAbsolutePath());

Now you have current directory in a File object so (Example file object is f then),

f.getAbsolutePath() will give you the path in a String varaible type...

Tested in another directory that is not drive C works fine

0

My favorite method is to get it from the system environment variables attached to the current running process. In this case, your application is being managed by the JVM.

String currentDir = System.getenv("PWD");
/*
 /home/$User/Documents/java
*/

To view other environment variables that you might find useful like, home dir, os version ........

//Home directory
String HomeDir = System.getEnv("HOME");


//Outputs for unix
/home/$USER

//Device user
String user = System.getEnv("USERNAME");


//Outputs for unix
$USER

The beautiful thing with this approach is that all paths will be resolved for all types of OS platform

3
  • Does it work on Windows?
    – Ovi Trif
    Mar 21 at 20:26
  • 1
    Yes ofcourse it should work on windows. Though it will give you windows resolved path format.. something like c//user// Mar 22 at 13:14
  • Thanks Andrew! I'm a mac user but currently working on a compose multiplatform app and It should also work on windows
    – Ovi Trif
    Mar 22 at 15:03
0

You might use new File("./"). This way isDirectory() returns true (at least on Windows platform). On the other hand new File("") isDirectory() returns false.

0

This is a very confuse topic, and we need to understand some concepts before providing a real solution.

  1. The File, and NIO File Api approaches with relative paths "" or "." uses internally the system parameter "user.dir" value to determine the return location.

  2. The "user.dir" value is based on the USER working directory, and the behavior of that value depends on the operative system, and the way the jar is executed.

  3. For example, executing a JAR from Linux using a File Explorer (opening it by double click) will set user.dir with the user home directory, regardless of the location of the jar. If the same jar is executed from command line, it will return the jar location, because each cd command to the jar location modified the working directory.

Having said that, the solutions using Java NIO, Files or "user.dir" property will work for all the scenarios in the way the "user.dir" has the correct value.

String userDirectory = System.getProperty("user.dir");
String userDirectory2 = new File("").getAbsolutePath();
String userDirectory3 = Paths.get("").toAbsolutePath().toString();

We could use the following code:

new File(MyApp.class.getProtectionDomain()
                     .getCodeSource()
                     .getLocation()
                     .toURI().getPath())
     .getParent();

to get the current location of the executed JAR, and personally I used the following approach to get the expected location and overriding the "user.dir" system property at the very beginning of the application. So, later when the other approaches are used, I will get the expected values always.

More details here -> https://blog.adamgamboa.dev/getting-current-directory-path-in-java/

    public class MyApp {
      
      static {
        //This static block runs at the very begin of the APP, even before the main method.
        try{
          File file = new File(MyApp.class.getProtectionDomain().getCodeSource()
                           .getLocation().toURI().getPath());
          String basePath = file.getParent();
          //Overrides the existing value of "user.dir"
          System.getProperties().put("user.dir", basePath);
        }catch(URISyntaxException ex){
          //log the error
        }
      }
     
      public static void main(String args []){
        //Your app logic
        
        //All these approaches should return the expected value
        //regardless of the way the jar is executed.
        String userDirectory = System.getProperty("user.dir");
        String userDirectory2 = new File("").getAbsolutePath();
        String userDirectory3 = Paths.get("").toAbsolutePath().toString();
      }
    }

I hope this explanation and details are helpful to others...

-1

None of the answers posted here worked for me. Here is what did work:

java.nio.file.Paths.get(
  getClass().getProtectionDomain().getCodeSource().getLocation().toURI()
);

Edit: The final version in my code:

URL myURL = getClass().getProtectionDomain().getCodeSource().getLocation();
java.net.URI myURI = null;
try {
    myURI = myURL.toURI();
} catch (URISyntaxException e1) 
{}
return java.nio.file.Paths.get(myURI).toFile().toString()
1
  • 1
    This returns the location of the JAR file. Not what was asked for.
    – user207421
    Oct 1, 2017 at 2:14
-6

System.getProperty("java.class.path")

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