Is there a way to convert this:

/C:/Users/David/Dropbox/My%20Programs/Java/Test/bin/myJar.jar

into this?:

C:\Users\David\Dropbox\My Programs\Java\Test\bin\myJar.jar

I am using the following code, which will return the full path of the .JAR archive, or the /bin directory.

fullPath = new String(MainInterface.class.getProtectionDomain()
            .getCodeSource().getLocation().getPath());

The problem is, getLocation() returns a URL and I need a normal windows filename. I have tried adding the following after getLocation():

toString() and toExternalForm() both return:

file:/C:/Users/David/Dropbox/My%20Programs/Java/Test/bin/

getPath() returns:

/C:/Users/David/Dropbox/My%20Programs/Java/Test/bin/

Note the %20 which should be converted to space.

Is there a quick and easy way of doing this?

  • Well, I tried using find and replace for the whitespaces and removing the first character, but I don't really like it. That's why I asked here, maybe someone knows of some way to convert it in a less error-prone and more efficient way. – David May 28 '11 at 21:35
  • Any alternatives on getting the full filename of the jar file are also appreciated. – David May 28 '11 at 21:38
  • @ David are you meaning String WinPath = System.getenv("USERPROFILE"); WinPath = WinPath.replace("\\", "\\\\"); WinPath += "\\\\Desktop\\\\SalesReports\\\\"; – mKorbel May 28 '11 at 21:43
up vote 69 down vote accepted

The current recommendation (with JDK 1.7+) is to convert URL → URI → Path. So to convert a URL to File, you would say Paths.get(url.toURI()).toFile(). If you can’t use JDK 1.7 yet, I would recommend new File(URI.getSchemeSpecificPart()).

Converting file → URI: First I’ll show you some examples of what URIs you are likely to get in Java.

                          -classpath URLClassLoader File.toURI()                Path.toUri()
C:\Program Files          file:/C:/Program%20Files/ file:/C:/Program%20Files/   file:///C:/Program%20Files/
C:\main.c++               file:/C:/main.c++         file:/C:/main.c++           file:///C:/main.c++
\\VBOXSVR\Downloads       file://VBOXSVR/Downloads/ file:////VBOXSVR/Downloads/ file://VBOXSVR/Downloads/
C:\Résume.txt             file:/C:/R%c3%a9sume.txt  file:/C:/Résume.txt         file:///C:/Résume.txt
\\?\C:\Windows (non-path) file://%3f/C:/Windows/    file:////%3F/C:/Windows/    InvalidPathException

Some observations about these URIs:

  • The URI specifications are RFC 1738: URL, superseded by RFC 2396: URI, superseded by RFC 3986: URI. (The WHATWG also has a URI spec, but it does not specify how file URIs should be interpreted.) Any reserved characters within the path are percent-quoted, and non-ascii characters in a URI are percent-quoted when you call URI.toASCIIString().
  • File.toURI() is worse than Path.toUri() because File.toURI() returns an unusual non-RFC 1738 URI (gives file:/ instead of file:///) and does not format URIs for UNC paths according to Microsoft’s preferred format. None of these UNC URIs work in Firefox though (Firefox requires file://///).
  • Path is more strict than File; you cannot construct an invalid Path from “\.\” prefix. “These prefixes are not used as part of the path itself,” but they can be passed to Win32 APIs.

Converting URI → file: Let’s try converting the preceding examples to files:

                            new File(URI)            Paths.get(URI)           new File(URI.getSchemeSpecificPart())
file:///C:/Program%20Files  C:\Program Files         C:\Program Files         C:\Program Files
file:/C:/Program%20Files    C:\Program Files         C:\Program Files         C:\Program Files
file:///C:/main.c++         C:\main.c++              C:\main.c++              C:\main.c++
file://VBOXSVR/Downloads/   IllegalArgumentException \\VBOXSVR\Downloads\     \\VBOXSVR\Downloads
file:////VBOXSVR/Downloads/ \\VBOXSVR\Downloads      \\VBOXSVR\Downloads\     \\VBOXSVR\Downloads
file://///VBOXSVR/Downloads \\VBOXSVR\Downloads      \\VBOXSVR\Downloads\     \\VBOXSVR\Downloads
file://%3f/C:/Windows/      IllegalArgumentException IllegalArgumentException \\?\C:\Windows
file:////%3F/C:/Windows/    \\?\C:\Windows           InvalidPathException     \\?\C:\Windows

Again, using Paths.get(URI) is preferred over new File(URI), because Path is able to handle the UNC URI and reject invalid paths with the \?\ prefix. But if you can’t use Java 1.7, say new File(URI.getSchemeSpecificPart()) instead.

By the way, do not use URLDecoder to decode a file URL. For files containing “+” such as “file:///C:/main.c++”, URLDecoder will turn it into “C:\main.c  ”! URLDecoder is only for parsing application/x-www-form-urlencoded HTML form submissions within a URI’s query (param=value&param=value), not for unquoting a URI’s path.

2014-09: edited to add examples.

  • 1
    This should be the accepted answer, thanks! – Khanser Feb 13 '14 at 23:02
  • 3
    Of course all this throws a god damn URISyntaxException. – sproketboy Sep 16 '15 at 14:39
  • Paths.get() uses the default filesystem so if you use it you can't test your code with an in-memory file system – opticyclic Feb 12 '16 at 21:24
String path = "/c:/foo%20bar/baz.jpg";
path = URLDecoder.decode(path, "utf-8");
path = new File(path).getPath();
System.out.println(path); // prints: c:\foo bar\baz.jpg
  • this answer is dangerous. scroll down to @yonran's answer – kritzikratzi Apr 18 '14 at 18:07
  • 1
    you mean scroll up – Dave Yarwood Jul 7 '17 at 12:04

The current answers seem fishy to me.

java.net.URL.getFile

turns a file URL such as this

java.net.URL = file:/C:/some/resource.txt

into this

java.lang.String = /C:/some/resource.txt

so you can use this constructor

new File(url.getFile)

to give you the Windows path

java.io.File = C:\some\resource.txt
  • 3
    This is incorrect. It does not solve the incorrect (%20) representation of spaces. I guess those voting up are like the answer author; didn't read the question. – Charles Goodwin Dec 22 '13 at 0:53

As was mentioned - getLocation() returns an URL. File can easily convert an URI to a path so for me the simpliest way is just use:

File fullPath = new File(MainInterface.class.getProtectionDomain().
    getCodeSource().getLocation().toURI());

Of course if you really need String, just modify to:

String fullPath = new File(MainInterface.class.getProtectionDomain().
    getCodeSource().getLocation().toURI()).toString();

You don't need URLDecoder at all.

  • This is way simpler than the other answers and actually worked for me. – user1062589 Feb 3 '17 at 17:34

The following code is what you need:

String path = URLDecoder.decode("/C:/Users/David/Dropbox/My%20Programs/Java/Test/bin/", "UTF-8");
System.out.println(new File(path).getPath());
  • 2
    getAbsolutePath() also works, and will never throw an IOException .. – laher May 28 '11 at 21:50
  • decode(string) is deprecated. You should specify encoding. – Bozho May 28 '11 at 21:55
  • Thanks. This with .getAbsolutePath() is perfect. – David May 28 '11 at 21:56
  • The method decode(String) from the type URLDecoder is deprecated.It was better with new File() – David May 28 '11 at 21:56
  • 1
    I have updated the answer with getPath which will never throw an exception and changed decode method to specify also encoding (that variant is not deprecated). – Andrey Adamovich May 28 '11 at 21:59

Hello confused people from the future. There is a nuance to the file path configuration here. The path you are setting for TESSDATA_PREFIX is used internally by the C++ tesseract program, not by the java wrapper. This means that if you're using windows you will need to replace the leading slash and replace all other forward slashes with backslashes. A very hacky workaround looks like this:

URL pathUrl = this.getClass().getResource(TESS_DATA_PATH);
String pathStr = pathUrl.getPath();

// hack to get around windows using \ instead of /
if (SystemUtils.IS_OS_WINDOWS) {
  pathStr = pathStr.substring(1);
  pathStr = pathStr.replaceAll("/", "\\\\");
}

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