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I've recently searched how I could get the application's directory in Java. I've finally found the answer but I've needed surprisingly long because searching for such a generic term isn't easy. I think it would be a good idea to compile a list of how to achieve this in multiple languages.

Feel free to up/downvote if you (don't) like the idea and please contribute if you like it.

Clarification:

There's a fine distinction between the directory that contains the executable file and the current working directory (given by pwd under Unix). I was originally interested in the former but feel free to post methods for determining the latter as well (clarifying which one you mean).

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3  
What path do you mean? The current working directory, or the directory in which the executable code resides? –  Paul de Vrieze Oct 20 '08 at 12:08
    
@Paul: Thanks. See update to my question. –  Konrad Rudolph Oct 20 '08 at 12:22
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19 Answers 19

In Java, there are two ways to find the application's path. One is to employ System.getProperty:

System.getProperty("user.dir");

Another possibility is the use of java.io.File:

new java.io.File("").getAbsolutePath();

Yet another possibilty uses reflection:

getClass().getProtectionDomain().getCodeSource().getLocation().getPath();
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1  
Note that this is a bit misleading/confusing. The three methods you quote can give completely different results! –  Zarkonnen Oct 20 '08 at 11:47
    
Zarkonnen: You're right but as implied in my original posting, I'm no expert. This is a community wiki. Please feel free to edit/correct my answer! –  Konrad Rudolph Oct 20 '08 at 12:19
    
TIP: Usually the path doesn't need to be specified if you want to access a file in the current working directory, like: file = new File("file.cfg"); Just be sure to always set the working directory to the location of your application during initialization or at the application shortcut. –  lepe Dec 14 '11 at 4:24
    
@lepe Don’t set the working directory at launch, this has some undesired consequences, such as pointing some file chooser dialogs by default to the application’s path, rather than the user-chosen working directory. –  Konrad Rudolph Dec 14 '11 at 7:15
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In .NET (C#, VB, …), you can query the current Assembly instance for its Location. However, this has the executable's file name appended. The following code sanitizes the path (using System.IO and using System.Reflection):

Directory.GetParent(Assembly.GetExecutingAssembly().Location)

Alternatively, you can use the information provided by AppDomain to search for referenced assemblies:

System.AppDomain.CurrentDomain.BaseDirectory

VB allows another shortcut via the My namespace:

My.Application.Info.DirectoryPath
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Upvoted for : System.AppDomain.CurrentDomain.BaseDirectory –  p.campbell May 27 '09 at 18:46
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You can also use Application.StartupPath for some programs. It won't work for ASP.NET, though. –  jocull Jan 22 '11 at 21:37
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Actually its, Application.ExecutablePath –  zam664 Mar 16 '12 at 3:19
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In bash, the 'pwd' command returns the current working directory.

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Unfortunately, pwd returns the current working directory which may differ from the path of the script. –  Konrad Rudolph Oct 20 '08 at 11:22
2  
The answer is actually found in stackoverflow.com/questions/59895/… –  Konrad Rudolph Oct 20 '08 at 11:23
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Delphi

In Windows applications:

Unit Forms;
path := ExtractFilePath(Application.ExeName);

In console applications:

Independent of language, the first command line parameter is the fully qualified executable name:

Unit System;
path := ExtractFilePath(ParamStr(0));
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Python

path = os.path.dirname(__file__)

That gets the path of the current module.

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in Ruby, the following snippet returns the path of the current source file:

path = File.dirname(__FILE__)
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Unix

In unix one can find the path to the executable that was started using the environment variables. It is not necessarily an absolute path, so you would need to combine the current working directory (in the shell: pwd) and/or PATH variable with the value of the 0'th element of the environment.

The value is limited in unix though, as the executable can for example be called through a symbolic link, and only the initial link is used for the environment variable. In general applications on unix are not very robust if they use this for any interesting thing (such as loading resources). On unix, it is common to use hard-coded locations for things, for example a configuration file in /etc where the resource locations are specified.

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In Windows, use the WinAPI function GetModuleFileName(). Pass in NULL for the module handle to get the path for the current module.

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Libc
In *nix type environment (also Cygwin in Windows):

  #include <unistd.h>

   char *getcwd(char *buf, size_t size);

   char *getwd(char *buf); //deprecated

   char *get_current_dir_name(void);

See man page

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In CFML there are two functions for accessing the path of a script:

getBaseTemplatePath()
getCurrentTemplatePath()

Calling getBaseTemplatePath returns the path of the 'base' script - i.e. the one that was requested by the web server.
Calling getCurrentTemplatePath returns the path of the current script - i.e. the one that is currently executing.

Both paths are absolute and contain the full directory+filename of the script.

To determine just the directory, use the function getDirectoryFromPath( ... ) on the results.

So, to determine the directory location of an application, you could do:

<cfset Application.Paths.Root = getDirectoryFromPath( getCurrentTemplatePath() ) />

Inside of the onApplicationStart event for your Application.cfc



To determine the path where the app server running your CFML engine is at, you can access shell commands with cfexecute, so (bearing in mind above discussions on pwd/etc) you can do:

Unix:

<cfexecute name="pwd"/>

for Windows, create a pwd.bat containing text @cd, then:

<cfexecute name="C:\docume~1\myuser\pwd.bat"/>

(Use the variable attribute of cfexecute to store the value instead of outputting to screen.)

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In Java the calls to

System.getProperty("user.dir")

and

new java.io.File("").getAbsolutePath();

return the current working directory.

The call to

getClass().getProtectionDomain().getCodeSource().getLocation().getPath();

may return the path to the executable.

Example:

  1. Your application is located at

    C:\MyApp.exe

  2. Open the shell (cmd.exe) and switch to C:\test\subdirectory

  3. Start the application using the command 'C:\MyApp.exe'

  4. The first two calls return 'C:\test\subdirectory' the third call returns 'C:\MyApp.exe'

Be aware the results for getClass()... can be different depending on how you start the application.

When debugging, the result will be the path to the root of the generated class files, for instance

\c:\eclipse\workspaces\YourProject\bin\

The path does not include the directories for the generated class files.

For an executable, for instance created using Launch4J, the result will be the full path and the name of the executable, e.g. 'C:\dir...\YourApplication.exe'.

A complete example to get the application directory without executable name or the corresponding path to the class files when debugging:

String applicationDir = getClass().getProtectionDomain().getCodeSource().getLocation().getPath(); 

if (applicationDir.endsWith(".exe"))
{
    applicationDir = new File(applicationDir).getParent();
}
else
{
    // Add the path to the class files  
    applicationDir += getClass().getName().replace('.', '/');

    // Step one level up as we are only interested in the 
    // directory containing the class files
    applicationDir = new File(applicationDir).getParent();
}

Alternatively you can use getResource to find the path to the executable. By default this method will correctly return the path inside the generated class directories when debugging. An extra step is required when running from a jar or exe in order to resolve the directory location:

URL url = getClass().getResource("").toURI().toURL();
String applicationDir = url.getPath();

if(url.getProtocol().equals("jar"))
    applicationDir = new File(((JarURLConnection)url.openConnection()).getJarFileURL().getFile()).getParent();
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Was looking for a way to put read-only files into the same package as the java classes... getClass().getProtectionDomain().getCodeSource().getLocation().getPath() worked perfectly, thanks! –  fuzzyanalysis Dec 12 '12 at 5:49
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Objective-C Cocoa (Mac OS X, I don't know for iPhone specificities):

NSString * applicationPath = [[NSBundle mainBundle] bundlePath];
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In my Mac OSX app, I was looking for the actual path to the executable file (for inclusion in a plist) and used this: NSString *executablePath = [[NSBundle mainBundle] executablePath]; - there's also an 'executableURL' version to return an URL instead of a string –  Todd May 5 '12 at 8:12
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In Tcl

Path of current script:

set path [info script]

Tcl shell path:

set path [info nameofexecutable]

If you need the directory of any of these, do:

set dir [file dirname $path]

Get current (working) directory:

set dir [pwd]
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In .Net you can use

System.IO.Directory.GetCurrentDirectory

to get the current working directory of the application, and in VB.NET specifically you can use

My.Application.Info.DirectoryPath

to get the directory of the exe.

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In PHP :

<?php
  echo __DIR__; //same as dirname(__FILE__). will return the directory of the running script
  echo $_SERVER["DOCUMENT_ROOT"]; // will return the document root directory under which the current script is executing, as defined in the server's configuration file.
  echo getcwd(); //will return the current working directory (it may differ from the current script location).
?>
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Note to answer "20 above regarding Mac OSX only: If a JAR executable is transformed to an "app" via the OSX JAR BUNDLER, then the getClass().getProtectionDomain().getCodeSource().getLocation(); will NOT return the current directory of the app, but will add the internal directory structure of the app to the response. This internal structure of an app is /theCurrentFolderWhereTheAppReside/Contents/Resources/Java/yourfile

Perhaps this is a little bug in Java. Anyway, one must use method one or two to get the correct answer, and both will deliver the correct answer even if the app is started e.g. via a shortcut located in a different folder or on the desktop.

carl

SoundPimp.com

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in Android its

getApplicationInfo().dataDir;

to get SD card, I use

Environment.getExternalStorageDirectory();
Environment.getExternalStoragePublicDirectory(String type);

where the latter is used to store a specific type of file (Audio / Movies etc). You have constants for these strings in Environment class.

Basically, for anything to with app use ApplicationInfo class and for anything to do with data in SD card / External Directory using Environment class.

Docs : ApplicationInfo , Environment

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In cmd (the Microsoft command line shell)

You can get the name of the script with %* (may be relative to pwd)

This gets directory of script:

set oldpwd=%cd%
cd %0\..
set app_dir=%pwd%
cd %oldpwd%

If you find any bugs, which you will. Then please fix or comment.

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In VB6, you can get the application path using the App.Path property.

Note that this will not have a trailing \ EXCEPT when the application is in the root of the drive.

In the IDE:

?App.Path
C:\Program Files\Microsoft Visual Studio\VB98
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