9

I encountered a problem with getPath() recently.

my code looks something like this:

File path = new File(Main.class.getResource("/worlds/").getPath());
File[] files = path.listFiles();

The Problem now is, that if there is a space somewhere in the Path to the Main class, path.listFiles() will return null. If there is no Space, everything works fine.

if i print the path to the cmd, i see that every space is replaced by an %20

2 Answers 2

13

that is not the correct way to convert a URL to a File. try this instead:

new File(Main.class.getResource("/worlds/").toURI());
0
4

Don't do that. A resource URL returned by getResource() isn't necessarily a file on the file system, which is what File represents.

11
  • Maybe, but i cant see a better way read the content of a directory, relative to the Path where the program is executed
    – Simiil
    Commented Oct 8, 2011 at 22:09
  • new File("./worlds").listFiles() Commented Oct 8, 2011 at 22:22
  • 1
    @MasterCassim: I'd like to see proof of that. The error described in the question is related to improperly decoding a URL and trying to use it as a file path. My suggestion doesn't use a URL, so how can it cause the same error? Commented Oct 9, 2011 at 0:43
  • @Simiil there's no 'maybe' about it, it's a fact, and the fact that you can't see a better way doesn't change it.
    – user207421
    Commented Oct 9, 2011 at 3:44
  • Code: System.out.println("Using new File(./worlds)!"); path = new File("./worlds"); System.out.println("Path = "+path); File[] files = path.listFiles(); System.out.println("Files = "+files); Output: Using new File(./worlds)! Path = .\worlds Files = null
    – Tobias
    Commented Oct 9, 2011 at 9:38

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