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I am trying to access a file using the class path like so:

String path = getClass().getProtectionDomain().getCodeSource()
            .getLocation().toString();
    File test = new File(path);
    File table = new File(test, "testFile.xlsx");

I am doing this because I need to create a Jar that will read and write to this file if it is in the same folder.

I get this error:

java.io.FileNotFoundException:  "myFilepath" (The filename, directory name, or volume label syntax is incorrect)

If I copy and paste myFilepath in a file browser it brings up my file. Anyone see what I am doing wrong, or ways I can improve my methods?

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you need to clarify more your question, add more context and explain the intention, not only the actual 'thing' that needs to be done. (or I will downvote you) –  David Hofmann Jul 18 '13 at 21:18
    
@DavidHofmann I access an excel spreadsheet. I edit the contents of this spreadsheet. I save the changes to this spreadsheet to the original file. This application is for a non-developer. He needs to be able to run the executable and then open the spreadsheet to look at the data. This is all the context, instead of down/up voting I would greatly appreciate some insight. –  PandaBearSoup Jul 18 '13 at 21:31
    
So you java swing application that you distribute in a jar. That application should open a file in the file system where it is loaded, modify the file and save it. Is that it ? –  David Hofmann Jul 19 '13 at 11:09

2 Answers 2

You can't access a File in your classpath, but you can get a resource stream from your classpath and read the contents from it. You need to look at this answer http://stackoverflow.com/a/1464366/39998

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If I access the file this way as you suggested: InputStream stream = Test.class.getResourceAsStream("/SomeTextFile.txt"); How do I then create a FileOutputSteam to write the changes to this file? –  PandaBearSoup Jul 18 '13 at 20:42
    
Normally you read the contents of some file inside your jar (that is what we call a resource). What exactly you want to do afterwards, modify the file inside the jar ? –  David Hofmann Jul 18 '13 at 20:48
    
This file needs to be accessed after executing the program. –  PandaBearSoup Jul 18 '13 at 20:53

Instead of trying to get the class path name, Create a File object and then get its absolute path using the getAbsolutePath() method. This will give the path of the source file which runs the code.

Kindly try the below code:-

 java.io.File f = new java.io.File("H");
        String path;
        path = f.getAbsolutePath();
        path = path.substring(0, (path.length() - f.getName().length()));
        f.deleteOnExit();

where the string path will then contain your class file directory path.

share|improve this answer
    
stackoverflow.com/questions/2837263/… I tried this method and got the same error. –  PandaBearSoup Jul 18 '13 at 20:37
    
Kindly try the above code and see if you get your absolute class file path without the class name with the "path" variable. –  G.Srinivas Kishan Jul 18 '13 at 20:42
1  
This brought me to the project folder, the file is contained within src/main/resources. How would I make this work when having the file in the same folder as the jar? –  PandaBearSoup Jul 18 '13 at 20:46
    
kindly try adding the jar file folder name with this path thru concatenation and then use the new directory and see if it works. –  G.Srinivas Kishan Jul 18 '13 at 20:51
    
Then the compiled class file is the same as that of jar file so the class file path is reached, with the jar file in it. –  G.Srinivas Kishan Jul 18 '13 at 20:58

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