106

I have a project with 2 packages:

  1. tkorg.idrs.core.searchengines
  2. tkorg.idrs.core.searchengines

In package (2) I have a text file ListStopWords.txt, in package (1) I have a class FileLoadder. Here is code in FileLoader:

File file = new File("properties\\files\\ListStopWords.txt");

But have this error:

The system cannot find the path specified

Can you give a solution to fix it? Thanks.

  • 10
    Your both package examples are the same. Don't you mean properties.files for 2? – BalusC Oct 2 '10 at 3:58

11 Answers 11

155

If it's already in the classpath, then just obtain it from the classpath instead of from the disk file system. Don't fiddle with relative paths in java.io.File. They are dependent on the current working directory over which you have totally no control from inside the Java code.

Assuming that ListStopWords.txt is in the same package as your FileLoader class, then do:

URL url = getClass().getResource("ListStopWords.txt");
File file = new File(url.getPath());

Or if all you're ultimately after is actually an InputStream of it:

InputStream input = getClass().getResourceAsStream("ListStopWords.txt");

This is certainly preferred over creating a new File() because the url may not necessarily represent a disk file system path, but it could also represent virtual file system path (which may happen when the JAR is expanded into memory instead of into a temp folder on disk file system) or even a network path which are both not per definition digestable by File constructor.

If the file is -as the package name hints- is actually a fullworthy properties file (containing key=value lines) with just the "wrong" extension, then you could feed the InputStream immediately to the load() method.

Properties properties = new Properties();
properties.load(getClass().getResourceAsStream("ListStopWords.txt"));

Note: when you're trying to access it from inside static context, then use FileLoader.class (or whatever YourClass.class) instead of getClass() in above examples.

  • Was FileLoader removed from java? I am trying to do this from a static context (java 6) and I can't find any way to import it and it keeps telling me it cannot resolve to a type. Strangely enough, it autocompleted as I typed it, but then proceeded to give me an error. – turbo Oct 7 '13 at 18:57
  • 2
    oh, it's supposed to be ClassLoader.class. – turbo Oct 7 '13 at 19:12
  • 4
    @turbo: FileLoader is OP's own custom class. It's supposed to be exactly that class wherein you're attempting to obtain the resource. Thus, so NameOfYourCurrentClass.class.getResourceAsStream(...). The ClassLoader.class will fail if the ClassLoader class is being loaded by a different classloader, which may happen in an "enterprise" application with a hierarchy of multiple classloaders (like a Java EE web application). – BalusC Oct 7 '13 at 19:30
  • Ohh, I see. I didn't understand that it was dependent. Thanks for clearing that up! – turbo Oct 7 '13 at 19:32
  • 7
    Any suggestion for if the file is not in the same package? In my instance I'm trying to open a file which is located in a test package. – Robin Newhouse Oct 9 '14 at 1:19
42

The following line can be used if we want to specify the relative path of the file.

File file = new File("./properties/files/ListStopWords.txt");  
  • 3
    may i know why 3 slashes between the path. – M.S.Naidu Nov 11 '14 at 8:54
  • Error: > Illegal escape character in string literal. – IgorGanapolsky May 1 '15 at 16:58
  • How to convert this to an InputStream? – IgorGanapolsky Mar 22 '16 at 20:35
  • 1
    @IgorGanapolsky InputStream is = new FileInputStream("./properties/files/ListStopWords.txt"); – Cameron Hudson Jan 31 at 1:17
34

The relative path works in in java using the . operator.

  • . means same folder as the currently running context.
  • .. means the parent folder of the currently running context.

So the question is how do you know the path where the java is currently looking?

do a small experiment

   File directory = new File("./");
   System.out.println(directory.getAbsolutePath());

Observe the output , you will come to know the current directory where java is looking . From there , simply use the ./ operator to locate your file.

for example if the output is

G:\JAVA8Ws\MyProject\content.

and your file is present in the folder MyProject simply use

File resourceFile = new File("../myFile.txt");

Hope this helps

7
InputStream in = FileLoader.class.getResourceAsStream("<relative path from this class to the file to be read>");
try {
    BufferedReader reader = new BufferedReader(new InputStreamReader(in));
    String line = null;
        while ((line = reader.readLine()) != null) {
            System.out.println(line);
        }
} catch (Exception e) {
    e.printStackTrace();
}
  • 3
    What the heck is FileLoadder??? – IgorGanapolsky May 1 '15 at 16:59
  • 1
    @IgorGanapolsky its the name of Class. You can refer to .class literal only by providing full name of its class. – Tomasz Mularczyk Jan 3 '16 at 21:37
  • I think it intends to be FileLoader. – jamesdeath123 Jan 26 '16 at 2:57
6

try .\properties\files\ListStopWords.txt

4

While the answer provided by BalusC works for this case, it will break when the file path contains spaces because in a URL, these are being converted to %20 which is not a valid file name. If you construct the File object using a URI rather than a String, whitespaces will be handled correctly:

URL url = getClass().getResource("ListStopWords.txt");
File file = new File(url.toURI());
3

I could have commented but I have less rep for that. Samrat's answer did the job for me. It's better to see the current directory path through the following code.

    File directory = new File("./");
    System.out.println(directory.getAbsolutePath());

I simply used it to rectify an issue I was facing in my project. Be sure to use ./ to back to the parent directory of the current directory.

    ./test/conf/appProperties/keystore 
  • I'm running my code through tomcat and so the current directory is not the project folder - How do i define the relative path to the project root? Im currently using the hard path:"C:\\Users\\user\\Desktop\\Repositories\\L1_WebShop\\dblogs.log"; – Tiago Redaelli Oct 5 at 20:23
  • @TiagoRedaelli check out this ques : stackoverflow.com/questions/12843217/… – Aditya Bhardwaj Oct 9 at 5:18
0

I wanted to parse 'command.json' inside src/main//js/Simulator.java. For that I copied json file in src folder and gave the absolute path like this :

Object obj  = parser.parse(new FileReader("./src/command.json"));
0

enter image description here

Assuming you want to read from resources directory in FileSystem class.

String file = "dummy.txt";
var path = Paths.get("src/com/company/fs/resources/", file);
System.out.println(path);

System.out.println(Files.readString(path));

Note: Leading . is not needed.

-1

If you are trying to call getClass() from Static method or static block the you can do the following way.

You can call getClass() on the Properties object you are loading into.

public static Properties pathProperties = null;

static { 
    pathProperties = new Properties();
    String pathPropertiesFile = "/file.xml;
    InputStream paths = pathProperties.getClass().getResourceAsStream(pathPropertiesFile);
}
  • Simply missing a closing quote. – jamesdeath123 Jan 26 '16 at 2:57
-1

If text file is not being read, try using a more closer absolute path (if you wish you could use complete absolute path,) like this:

FileInputStream fin=new FileInputStream("\\Dash\\src\\RS\\Test.txt");

assume that the absolute path is:

C:\\Folder1\\Folder2\\Dash\\src\\RS\\Test.txt

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