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I have a file that is in my classpath, e.g. com/path/to/file.txt. I need to load or reference this file as a java.io.File object. The is because I need to access the file using java.io.RandomAccessFile (the file is large, and I need to seek to a certain byte offset). Is this possible? The constructors for RandomAccessFile require a File instance or String (path).

If there's another solution to seek to a certain byte offset and read the line, I'm open to that as well.

225

Try getting hold of a URL for your classpath resource:

URL url = this.getClass().getResource("/com/path/to/file.txt")

Then create a file using the constructor that accepts a URI:

File file = new File(url.toURI());
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    any chance you could accept this answer with the big green tick? :) – joelittlejohn Dec 6 '10 at 13:12
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    @jake with 235 rep, you should be able to mark this as the answer now. – John Ruiz Oct 6 '13 at 17:15
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    @jake come on you can do it :D – Šaikat Jan 7 '14 at 13:29
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    @jake Come on man, just push the button! – Toby Caulk Aug 19 '15 at 13:49
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    Surely jake will deliver – tytk Apr 8 '16 at 22:37
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This also works, and doesn't require a /path/to/file URI conversion. If the file is on the classpath, this will find it.

File currFile = new File(getClass().getClassLoader().getResource("the_file.txt").getFile());
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    This worked for me whereas this did not: URL url = this.getClass().getResource("/com/path/to/file.txt"). Was this because the file I was loading was in a folder called "resource" rather than being in a package/folder shared by "this.getClass()"? Anyway, thanks. – thebiggestlebowski Jun 30 '15 at 20:13
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    Really concise answer. – Harihar Das Jan 25 '16 at 11:52
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    This wont work if the resource path (or a parent path of a relative resource) contains spaces. getFile() returns a URL encoded string with %20s that the File(String) constructor interprets literally. @joelittlejohn answer below will correctly handle this case as it passes a URI to the File constructor – dan carter Jul 5 '16 at 23:28
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I find this one-line code as most efficient and useful:

File file = new File(ClassLoader.getSystemResource("com/path/to/file.txt").getFile());

Works like a charm.

  • This worked for me and is the cleanest answer on this page. – Jeremy Feb 5 '16 at 13:12
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    This wont work if the resource path (or a parent path of a relative resource) contains spaces. getFile() returns a URL encoded string with %20s that the File(String) constructor interprets literally. @joelittlejohn answer below will correctly handle this case as it passes a URI to the File constructor. Should be File file = new File(ClassLoader.getSystemResource("com/path/to/file.txt").toURI()); – dan carter Jul 5 '16 at 23:34
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Or use directly the InputStream of the resource using the absolute CLASSPATH path (starting with the / slash character):


getClass().getResourceAsStream("/com/path/to/file.txt");

Or relative CLASSPATH path (when the class you are writing is in the same Java package as the resource file itself, i.e. com.path.to):


getClass().getResourceAsStream("file.txt");

  • And how would this allow the original poster to use java.io.RandomAccessFile? – joelittlejohn Dec 6 '10 at 13:12
  • Your answer is more proper, I admit, and that is why I voted it up. One can skip to a certain offset in a file using the java.io.InputStream.skip(long) method and then read a line, for example, by using the java.io.BufferedReader.readLine() method. The question was also aimed at other solutions than just the RandomAccessFile one. – Jiri Patera Dec 6 '10 at 14:44

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