23

Is there a way to read from a file that is in the same folder as the .jar file? I am trying to create a java program that has to read from a file when I turn in my assignment. I do not know where the file or program will be held once I turn it over so I dont think I can encode the directory of the held file. Is this possible? The problem is that i have to upload the file to a CSX hosts server which is a linux server and run it from there. If I dont put a path before the file will it just search its current folder location?

11
  • What's your context: Applet or Desktop? Can you put the file into the JAR as a resource?
    – Aubin
    Feb 19, 2013 at 21:09
  • Can you have your program take the path to the file as a command line argument?
    – dnault
    Feb 19, 2013 at 21:13
  • 1
    Use ClassLoader.findResource to find your class. Decode the resulting URL to figure out where it is.
    – Hot Licks
    Feb 19, 2013 at 21:14
  • Why not answer the question in the answer box?
    – Joe
    Feb 19, 2013 at 21:14
  • (Of course, findResource is protected, so it takes some cleverness.)
    – Hot Licks
    Feb 19, 2013 at 21:14

8 Answers 8

26

You can get the location of the JAR file containing any specific class via:

URL url = thisClass.getProtectionDomain().getCodeSource().getLocation();

From there it is easy to relativize a URL to the desired file.

22

As noted in the comments, this works only if you run the command from the directory the jar is in.

(In the context of a desktop application)
To access a file that's in the current directory of the jar, your path to the file should be preceded by a dot. Example:

String path = "./properties.txt";
FileInputStream fis = new FileInputStream(path);
BufferedReader in = new BufferedReader(new InputStreamReader(fis));
// Read the file contents...

In this example, there is a text file called properties.txt in the same directory as the jar.
This file will be read by the program contained in the jar.

Edit: you said the filename would not change, and this answer applies given that you know the name beforehand, of course, should you prefer to hardcode it.

9
  • 8
    This is a much cleaner solution than mine however it does not handle all the cases. Sometimes one's current directory (the . ) is not the same as the dir containing the application jar. Assuming your jar is called app.jar and is in a dir named target; if the grader were to type "java -jar app.jar" from within the target dir then your solution will work. However if the grader were to run the java command one level outside the app dir e.g. "java -jar ./target/app.jar" then your solution would look for the input file outside of the target dir and thus would not find it.
    – Darwyn
    Feb 19, 2013 at 22:49
  • 2
    Adding './' to the front of a filename accomplishes precisely nothing. 'Current directory of the JAR' isn't the same thing as 'same folder as the .jar'. -1
    – user207421
    Apr 12, 2014 at 2:57
  • 1
    For me it seems like working only while running .jar file from terminal. If I'm trying to open it with Java Runtime it does not work. When I wanted to see absolute path of "." file it returns my home folder location. What worked for me was creating String which stores path to parent folder of .jar file: String filesDirectory = (new File(getClass().getProtectionDomain().getCodeSource().getLocation().getPath()).getParent() + "/").replace("%20", " "); . Anyway I would appreciate some prettier solution.
    – kcpr
    Aug 27, 2014 at 8:45
  • 1
    @Bain It will in fact accomplish precisely nothing compared to removing it.
    – user207421
    Jul 20, 2016 at 21:25
  • 1
    Need to emphasize @Darwyn comment. This will only work if the command is run at JAR directory.
    – Joshua H
    Feb 9, 2017 at 17:29
4

if the input filename can be hardcoded and you know that it will always reside in the same directory as the jar containing your code then this should work:

public static void main(String[] args) {

    try {
        // Determine where the input file is; assuming it's in the same directory as the jar
        String fileName = "input.txt";
        File jarFile = new File(Main.class.getProtectionDomain().getCodeSource().getLocation().toURI().getPath());
        String inputFilePath = jarFile.getParent() + File.separator + fileName;         
        FileInputStream inStream = new FileInputStream(new File(inputFilePath));

        try {

            // Read in the contents of the input file in a single gulp
            FileChannel fc = inStream.getChannel();
            MappedByteBuffer bb = fc.map(FileChannel.MapMode.READ_ONLY, 0,
                    fc.size());

            // Do something with the read in data
            System.out.println(Charset.defaultCharset().decode(bb)
                    .toString());
        } catch (IOException e) {
            e.printStackTrace();
        } finally {
            inStream.close();
        }

    } catch (IOException | URISyntaxException e) {
        e.printStackTrace();
    }

}
3
  • 2
    "this should work:" It would not work in an applet or any application launched using JWS, probably also not a servlet. Even Sun was telling us long ago WTE, "don't try to locate the executable - it is none of the apps. business". Feb 20, 2013 at 1:28
  • 1
    True it will fail in an applet, or when launched by java web start, or when running in an application server (e.g. OSGi, IBM WebSphere, Oracle WebLogics, etc). But it will work as a normal desktop java application.
    – Darwyn
    Feb 20, 2013 at 2:52
  • 1
    Desktop app.? "a linux server and run it from there" Doesn't seem like the desktop to me. Feb 20, 2013 at 3:00
2

@kcpr - Thanks for the solutions provided. Below one worked for me.

private static String CONFIG_FILE_LOCATION = "lib"+ File.separator + "Config.properties";

static {
    File jarFile = new File(Main.class.getProtectionDomain().getCodeSource().getLocation().toURI().getPath());
    String inputFilePath = jarFile.getParent() + File.separator + CONFIG_FILE_LOCATION; 
    propConfig = new PropertiesConfiguration(new File(inputFilePath));
    propConfig.load();
}
1
  • 1
    Why do you need the toURI()? The getLocation() returns a URL object which seems to include the same path... Am I missing something?
    – Adam
    Mar 10, 2019 at 16:15
1

To make it 'self-contained', put the resource inside the Jar. It then becomes a (read only) embedded resource for which we can obtain an URL using something along the lines of:

URL url = this.getClass().getResource("/path/to/the.resource");
1

Here's how you get a clean directory path to your jar file (Based on EJP's answer):

URL url = IssueInfoController.class.getProtectionDomain().getCodeSource().getLocation();
String urlString = url.toString();
int firstSlash =  urlString.indexOf("/");
int targetSlash = urlString.lastIndexOf("/", urlString.length() - 2) + 1;

return urlString.substring(firstSlash, targetSlash) + YOUR_FILE;
1
  • 2
    Should use URL.getPath() instead of all this.
    – user207421
    Jan 18, 2016 at 22:12
0

Based on your comments, I think your best solution would be to pass in the absolute path of the uploaded file into the jar.

You can pass the path into the jar as a command line argument. Since the path and file name do not change, and you are runing it from linux, you could create a .sh script to run it.

#!/bin/bash    
java -jar myjar.jar /path/to/file/filename.txt

This also frees you from hardcoding in a file path, or file name into the jar.

2
  • Doesn't answer the question. Read it again. He doesn't know where the file will be.
    – user207421
    Feb 25, 2014 at 22:59
  • 2
    Truth is not a function of time.
    – user207421
    Nov 24, 2015 at 2:48
-1
public class TestClassLoaderAccess {
    public static void main(String[] argv) {
        TestClassLoaderAccess me = new TestClassLoaderAccess();
        ClassLoader myLoader = me.getClass().getClassLoader();
        System.out.println(myLoader.getClass().getSuperclass().getName());
        java.net.URLClassLoader myUrlLoader = (java.net.URLClassLoader) myLoader;
        java.net.URL resource = myUrlLoader.findResource("TestClassLoaderAccess.class");
        System.out.println(resource.toString());
    }
}

Running it:

C:\JavaTools>javac TestClassLoaderAccess.java

C:\JavaTools>java TestClassLoaderAccess
java.net.URLClassLoader
file:/C:/JavaTools/TestClassLoaderAccess.class

C:\JavaTools>

(The first println is just to prove that the class loader is a subclass of URLClassLoader.)

1
  • This finds a resource inside the JAR. It only works here because there is no JAR at all. Not what was asked for. Not an answer.
    – user207421
    Feb 25, 2014 at 22:36

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