190

How can I change the current working directory from within a Java program? Everything I've been able to find about the issue claims that you simply can't do it, but I can't believe that that's really the case.

I have a piece of code that opens a file using a hard-coded relative file path from the directory it's normally started in, and I just want to be able to use that code from within a different Java program without having to start it from within a particular directory. It seems like you should just be able to call System.setProperty( "user.dir", "/path/to/dir" ), but as far as I can figure out, calling that line just silently fails and does nothing.

I would understand if Java didn't allow you to do this, if it weren't for the fact that it allows you to get the current working directory, and even allows you to open files using relative file paths....

2
  • 1
    Getting and using information is different from changing it. For example on Windows you can easily get environment variables but it is harder to change them (in system wide way).
    – PhiLho
    Commented May 8, 2009 at 14:58
  • 1
    bugs.java.com/bugdatabase/view_bug.do?bug_id=4045688 states in the evaluation section "Since that time, no further customers have come forward or were otherwise identified. ..." and as of 2018 we've got some 175.000 views of this question :-( Commented Sep 16, 2018 at 8:27

14 Answers 14

163

There is no reliable way to do this in pure Java. Setting the user.dir property via System.setProperty() or java -Duser.dir=... does seem to affect subsequent creations of Files, but not e.g. FileOutputStreams.

The File(String parent, String child) constructor can help if you build up your directory path separately from your file path, allowing easier swapping.

An alternative is to set up a script to run Java from a different directory, or use JNI native code as suggested below.

The relevant OpenJDK bug was closed in 2008 as "will not fix".

9
  • 23
    i don't think i've found a single difference between java and c# that makes me think, "those java guys sure know what they're doing"
    – Jake
    Commented Feb 22, 2012 at 21:05
  • 3
    Hard to believe that java doesn't have some parameter "start in this directory..." at least...
    – rogerdpack
    Commented Jan 31, 2013 at 23:30
  • 10
    In Java's defense (and I'm a UNIX guy that desires this feature)...it is a VM that is meant to be agnostic to OS particulars. The "present working directory" idiom is not available in some operating systems.
    – Tony K.
    Commented Dec 20, 2013 at 4:56
  • 14
    To be fair to Java, they had to do it first, C# has had the benefit of being able to learn from their mistakes in a lot of areas.
    – Ryan Leach
    Commented Jan 21, 2014 at 5:20
  • 3
    @VolkerSeibt: On further investigation, it seems that user.dir only works for some classes, including the one I tested with at first. new FileOutputStream("foo.txt").close(); creates the file in the original working directory even if user.dir is changed by the program.
    – Michael Myers
    Commented Jun 9, 2015 at 17:13
43

If you run your legacy program with ProcessBuilder, you will be able to specify its working directory.

1
  • 1
    's route is the route I took. I was able to run an executable from a different working directory with the following: File WorkingDir = new File("C:\\path\\to\\working\\dir\\"); ProcessBuilder pBuilder = new ProcessBuilder("C:\\path\\to\\working\\dir\\executable.exe"); pBuilder.directory(WorkingDir); Process p = pBuilder.start(); Commented Feb 9, 2018 at 13:11
30

There is a way to do this using the system property "user.dir". The key part to understand is that getAbsoluteFile() must be called (as shown below) or else relative paths will be resolved against the default "user.dir" value.

import java.io.*;

public class FileUtils
{
    public static boolean setCurrentDirectory(String directory_name)
    {
        boolean result = false;  // Boolean indicating whether directory was set
        File    directory;       // Desired current working directory

        directory = new File(directory_name).getAbsoluteFile();
        if (directory.exists() || directory.mkdirs())
        {
            result = (System.setProperty("user.dir", directory.getAbsolutePath()) != null);
        }

        return result;
    }

    public static PrintWriter openOutputFile(String file_name)
    {
        PrintWriter output = null;  // File to open for writing

        try
        {
            output = new PrintWriter(new File(file_name).getAbsoluteFile());
        }
        catch (Exception exception) {}

        return output;
    }

    public static void main(String[] args) throws Exception
    {
        FileUtils.openOutputFile("DefaultDirectoryFile.txt");
        FileUtils.setCurrentDirectory("NewCurrentDirectory");
        FileUtils.openOutputFile("CurrentDirectoryFile.txt");
    }
}
1
  • 5
    But it doesn't change the current working directory. Only the value of user.dir. The fact that the absolute path becomes critical proves it.
    – user207421
    Commented Sep 20, 2017 at 6:13
23

It is possible to change the PWD, using JNA/JNI to make calls to libc. The JRuby guys have a handy java library for making POSIX calls called jnr-posix. Here's the maven info

4
  • 2
    There doesn't seem to be a modern version of jna-posix. I forked and added one: github.com/pbiggar/jnr-posix. I can confirm that I can change the PWD with this. Commented Nov 25, 2011 at 18:10
  • Yes. Sorry, I refactored that file and forgot this answer linked to the file. Fixed. Commented Feb 1, 2013 at 3:55
  • 2
    You can do this, but if you don't also change the user.dir system property then File.getAbsolutePath() will resolve against user.dir, while the pathname in File resolves against the OS working directory.
    – Morrie
    Commented Nov 10, 2014 at 14:25
  • In relation to the original question, using jnr-posix, how can I change the current working directory in Java. What class do I have to create a instance of to use the chdir method? I did not really understand the Clojure example given. Thanks in advance. Commented Nov 26, 2014 at 15:09
20

As mentioned you can't change the CWD of the JVM but if you were to launch another process using Runtime.exec() you can use the overloaded method that lets you specify the working directory. This is not really for running your Java program in another directory but for many cases when one needs to launch another program like a Perl script for example, you can specify the working directory of that script while leaving the working dir of the JVM unchanged.

See Runtime.exec javadocs

Specifically,

public Process exec(String[] cmdarray,String[] envp, File dir) throws IOException

where dir is the working directory to run the subprocess in

1
  • 2
    This seems to be a better answer than the accepted answer (which starts with "There is no reliable way to do this in pure Java. "). Is there a way to petition for this answer to be considered as the accepted answer?
    – John
    Commented Aug 31, 2015 at 20:06
10

If I understand correctly, a Java program starts with a copy of the current environment variables. Any changes via System.setProperty(String, String) are modifying the copy, not the original environment variables. Not that this provides a thorough reason as to why Sun chose this behavior, but perhaps it sheds a little light...

2
  • 4
    You seem to be mixing up environment variables and properties. The former gets inherited from the OS while the latter can be defined on the command line using -D. But I agree, on JVM start predefined properties like user.dir get copied from the OS and changing them later doesn't help.
    – maaartinus
    Commented Apr 25, 2012 at 15:39
  • 2
    Changing user.dir affects File.getAbsolutePath() and File.getCanonicalPath(), but not the OS's idea of the working directory, which dictates how File pathnames are resolved when accessing files.
    – Morrie
    Commented Nov 10, 2014 at 14:28
6

The working directory is a operating system feature (set when the process starts). Why don't you just pass your own System property (-Dsomeprop=/my/path) and use that in your code as the parent of your File:

File f = new File ( System.getProperty("someprop"), myFilename)
1
  • Because the piece of code contains a hard coded file path, and probably uses a hard-coded constructor that does not specify the parent directory to work from. Atleast, thats the situation I have :)
    – David Mann
    Commented Mar 5, 2014 at 16:24
4

The smarter/easier thing to do here is to just change your code so that instead of opening the file assuming that it exists in the current working directory (I assume you are doing something like new File("blah.txt"), just build the path to the file yourself.

Let the user pass in the base directory, read it from a config file, fall back to user.dir if the other properties can't be found, etc. But it's a whole lot easier to improve the logic in your program than it is to change how environment variables work.

2

I have tried to invoke

String oldDir = System.setProperty("user.dir", currdir.getAbsolutePath());

It seems to work. But

File myFile = new File("localpath.ext"); InputStream openit = new FileInputStream(myFile);

throws a FileNotFoundException though

myFile.getAbsolutePath()

shows the correct path. I have read this. I think the problem is:

  • Java knows the current directory with the new setting.
  • But the file handling is done by the operation system. It does not know the new set current directory, unfortunately.

The solution may be:

File myFile = new File(System.getPropety("user.dir"), "localpath.ext");

It creates a file Object as absolute one with the current directory which is known by the JVM. But that code should be existing in a used class, it needs changing of reused codes.

~~~~JcHartmut

1
  • "It creates a file Object" - yes. But it does not create a file in the filesystem. You forgot to use file.createNewFile() after that.
    – Gangnus
    Commented May 19, 2019 at 12:37
2

You can use

new File("relative/path").getAbsoluteFile()

after

System.setProperty("user.dir", "/some/directory")

System.setProperty("user.dir", "C:/OtherProject");
File file = new File("data/data.csv").getAbsoluteFile();
System.out.println(file.getPath());

Will print

C:\OtherProject\data\data.csv
1
2

You can change the process's actual working directory using JNI or JNA.

With JNI, you can use native functions to set the directory. The POSIX method is chdir(). On Windows, you can use SetCurrentDirectory().

With JNA, you can wrap the native functions in Java binders.

For Windows:

private static interface MyKernel32 extends Library {
    public MyKernel32 INSTANCE = (MyKernel32) Native.loadLibrary("Kernel32", MyKernel32.class);

    /** BOOL SetCurrentDirectory( LPCTSTR lpPathName ); */
    int SetCurrentDirectoryW(char[] pathName);
}

For POSIX systems:

private interface MyCLibrary extends Library {
    MyCLibrary INSTANCE = (MyCLibrary) Native.loadLibrary("c", MyCLibrary.class);

    /** int chdir(const char *path); */
    int chdir( String path );
}
0

The other possible answer to this question may depend on the reason you are opening the file. Is this a property file or a file that has some configuration related to your application?

If this is the case you may consider trying to load the file through the classpath loader, this way you can load any file Java has access to.

0

If you run your commands in a shell you can write something like "java -cp" and add any directories you want separated by ":" if java doesnt find something in one directory it will go try and find them in the other directories, that is what I do.

-1

Use FileSystemView

private FileSystemView fileSystemView;
fileSystemView = FileSystemView.getFileSystemView();
currentDirectory = new File(".");
//listing currentDirectory
File[] filesAndDirs = fileSystemView.getFiles(currentDirectory, false);
fileList = new ArrayList<File>();
dirList = new ArrayList<File>();
for (File file : filesAndDirs) {
if (file.isDirectory())
    dirList.add(file);
else
    fileList.add(file);
}
Collections.sort(dirList);
if (!fileSystemView.isFileSystemRoot(currentDirectory))
    dirList.add(0, new File(".."));
Collections.sort(fileList);
//change
currentDirectory = fileSystemView.getParentDirectory(currentDirectory);
2
  • import javax.swing.filechooser.FileSystemView;
    – Borneq
    Commented Sep 11, 2013 at 14:25
  • 2
    This answer is not related to the question. Commented Jun 3, 2016 at 7:41

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