Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

So my 2009 new years resolution is to learn Java. I recently acquired "Java for Dummies" and have been following along with the demo code in the book by re-writing it using Eclipse. Anyway, every example in the book that uses a relative path does not seem to read the .txt file it's supposed to read from.

Here is the sample code:

import java.util.Scanner;
import javax.swing.JFrame;
import javax.swing.JLabel;
import java.awt.GridLayout;

class TeamFrame extends JFrame {

    public TeamFrame() throws IOException {
        PlayerPlus player;
        Scanner myScanner = new Scanner(new File("Hankees.txt"));

        for (int num = 1; num <= 9; num++) {
            player = new PlayerPlus(myScanner.nextLine(), myScanner.nextDouble());


        add(new JLabel());
        add(new JLabel("   ------"));
        add(new JLabel("Team Batting Aberage:"));
        add(new JLabel(PlayerPlus.findTeamAverageString()));

        setTitle("The Hankees");
        setLayout(new GridLayout(11,2));

    void addPlayerInfo(PlayerPlus player) {
        add(new JLabel(player.getName()));
        add(new JLabel(player.getAverageString()));

And you can see in the below screen shot I have included this file.

image no longer available

Also, I have verified that when I build the application that a copy of Hankees.txt is placed in the bin folder with the compiled .class files.

Lastly, if I change line 12 to the following and place Hankees.txt in the root of my C:\ drive the program compiles and runs fine.

Scanner myScanner = new Scanner(new File("C:\\Hankees.txt"));

So basically, my question is what am I doing wrong? Or is Eclipse responsible for this in some way?

Thanks for any and all help!

share|improve this question
tangential comment: I'm leery of any book that has "dummies" in the title. Try Bruce Eckel's "Thinking in Java" or Niemeyer & Knudsen's "Learning Java", both are very good. – Jason S Jan 12 '09 at 23:45
Last time I checked Java for Dummies, it was Java 1.2-based. Have they updated it recently? – Michael Myers Jan 13 '09 at 21:20

6 Answers 6

up vote 50 down vote accepted

You need "src/Hankees.txt"

Your file is in the source folder which is not counted as the working directory.\

Or you can move the file up to the root directory of your project and just use "Hankees.txt"

share|improve this answer
Yup, that worked! Can you explain why this happens? Afterall, the file is in the src folder where the .class files are stored, why do I have to define the src folder again? – PHLAK Jan 12 '09 at 23:23
Um, I believe eclips by design makes the toplevel directory of your project the working directory of the program. I don't know why they do it that way. And lots of people have /bin and /src folders, so the /src isn't where the .class files are. – jjnguy Jan 12 '09 at 23:27
what if you have the file in a folder under the root directory, like Baseball/players/Hankees.txt? – norabora Nov 11 '09 at 16:38
That is the path you should use then. Baseball/players/Hankees.txt – jjnguy Nov 11 '09 at 16:48
Then use the path - players/Hankees.txt – jjnguy Nov 11 '09 at 16:52

This is really similar to another question. How should I load files into my Java application?

How should I load my files into my Java Application?

You do not want to load your files in by:


this is bad!

You should use getResourceAsStream.

InputStream inputStream = YourClass.class.getResourceAsStream(“file.txt”);

And also you should use File.separator; which is the system-dependent name-separator character, represented as a string for convenience.

share|improve this answer
Good information to know, thanks! – PHLAK Jan 16 '09 at 4:48
You should say why 'this is bad' – jason Jun 27 '11 at 2:06
The "why this is bad" is better described in the link I posted. This is the tldr; answer :) – Bernie Perez Jul 20 '11 at 21:46… says: The name of a resource is a '/'-separated path name that identifies the resource. So you shouldn't use File.separator. You're specifying resource name here, not file system path. – Vsevolod Golovanov Aug 18 at 11:19

A project's build path defines which resources from your source folders are copied to your output folders. Usually this is set to Include all files.

New run configurations default to using the project directory for the working directory, though this can also be changed.

This code shows the difference between the working directory, and the location of where the class was loaded from:

public class TellMeMyWorkingDirectory {
    public static void main(String[] args) {

The output is likely to be something like:

share|improve this answer

Yeah, eclipse sees the top directory as the working/root directory, for the purposes of paths.

...just thought I'd add some extra info. I'm new here! I'd like to help.

share|improve this answer

Paraphrasing from

The classes under resolve relative pathnames against the current user directory, which is typically the directory in which the virtual machine was started.

Eclipse sets the working directory to the top-level project folder.

share|improve this answer

i has the same problem. If YourClass and Hankees.txt have one directory in your Project then, i find following - not so bad.

URL url = YourClass.class.getClassLoader().getResource("Hankees.txt");
String filesPathAndName = url.getPath();    	
Scanner myScanner = new Scanner(new File(filesPathAndName))
share|improve this answer
That does not work, it return a null with FileNotFound (Java 1.7) in my similar program. – Pille May 2 at 15:32

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.