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:

I am trying to access resource on classpath using getResourceAsStream():

InputStream is = getClass().getResourceAsStream(path);

If path is something like this: /net/original/xsdtestxml.xml, then I have no problems. However, I have situations where I must use "go to parent" sign ../ to access certain files. I am constructing path manually based on certain parameters.

Final result is something like this:


This works fine in Eclipse. It works fine when I run it outside of Eclipse (from command line in programs target folder where .class are contained). However, as soon as I pack those in jar file, it throws NullPointerException.

Is there a possibility for getResourceAsStream() to support such a format after exported to jar? If not, is there a Java/ Utility class that can get file path without ../ signs? For example to convert /net/original/../original/xsdtestxml.xml to /net/original/xsdtestxml.xml format?

One possible solution:

There is a URI class found in package that does what I need. You simply create URI object with constructor or use static create(String) method. Then you call normalize() method and can get string path using toString() or getPath() methods.

Here is the example of code that worked for me:

String finalPath = URI.create(inputPath).normalize().getPath();

inputPath is path that can contain ../ literals. This perfectly converts /net/original/../original/xsdtestxml.xml to /net/original/xsdtestxml.xml which is just what I needed to access file from jar on classpath.

share|improve this question

1 Answer 1

If you need to access files inside a jar, I recommend opening and reading the jar file with JarFile and JarFile.entries().

For example:

String s = getClass().getProtectionDomain().getCodeSource().getLocation().getFile();
JarFile jf = new JarFile(, "UTF-8"));
// ...

Note that URLDecoder.decode() decodes something such as %20 (— to a whitespace) after calling getFile()

share|improve this answer
I need to access files that are stored in jar that is already on classpath. Your solution shows how to access files on any other jarfile (not necessarily on classpath), like a zip. This might come handy later, but I need way to access file in jar on classpath that are using parent directory literal ../ like /net/original/../original/xsdtestxml.xml. – JohnCoss Jul 31 '12 at 15:02
I've just tried with simple I have a file at /media/data/a.png, and a folder /media/data/tmp. Then this file new File("/media/data/tmp/../a.png") pointed to correct a.png. Because all other methods such as length(), isFile()… returned correct values. Would it help you? – Sa Dec Jul 31 '12 at 15:09
Thanks for quick reply. access files on computer's file system. In my case: I have file that is inside jar file and that jar file is on application's classpath (added using -cp argument when running java). I tried approach with removing ../ literals from path and I found one solution. I don't have enough reputation so I edited my initial question. That worked fine for me. – JohnCoss Jul 31 '12 at 15:21
I think the path got from classpath is pointed to real file on the system. If you have a current working folder, or the root folder where parent symbol (..) works, you can combine that path with the path you obtain from classpath. Sorry I'm not sure if it's right or wrong… Oh congrats, I've just seen your solution :-) – Sa Dec Jul 31 '12 at 15:25

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.