20

I have get this exception. but this exception is not reproduced again. I want to get the cause of this

Exception Caught while Checking tag in XMLjava.net.URISyntaxException:
Illegal character in opaque part at index 2:
C:\Documents and Settings\All Users\.SF\config\sd.xml
stacktrace net.sf.saxon.trans.XPathException.

Why this exception occured. How to deal with so it will not reproduce.

  • 1
    tried escaping the `\`? – aioobe May 18 '10 at 10:22
38

Basically "C:\Documents and Settings\All Users\.SF\config\sd.xml" is a pathname, and not a valid URI. If you want to turn a pathname into a "file:" URI, then do the following:

File f = new File("C:\Documents and Settings\All Users\.SF\config\sd.xml");
URI u = f.toURI();

This is the simplest, and most reliable and portable way to turn a pathname into a valid URI in Java.

But you need to realize that "file:" URIs have a number of caveats, as described in the javadocs for the File.toURI() method. For example, a "file:" URI created on one machine usually denotes a different resource (or no resource at all) on another machine.

10

The root cause for this is file path contains the forward slashes instead of backward slashes in windows.

Try like this to resolve the problem:

"file:" + string.replace("\\", "/");  
4

You must have the string like so:

String windowsPath = file:/C:/Users/sizu/myFile.txt;
URI uri = new URI(windowsPath);
File file = new File(uri);

Usually, people do something like this:

String windowsPath = file:C:/Users/sizu/myFile.txt;
URI uri = new URI(windowsPath);
File file = new File(uri);

or something like this:

String windowsPath = file:C:\Users\sizu\myFile.txt;
URI uri = new URI(windowsPath);
File file = new File(uri);
  • For me on Windows 8 the "file:C:\" approach did not work but "file:C:/" was working. Thanks! :) – Benny Neugebauer Feb 4 '14 at 10:32
0

I had the same "opaque" error while passing a URI on the command line to a script. This was on windows. I had to use forward slashes, NOT backslashes. This resolved it for me.

0

It needs a complete uri with type/protocol e.g

file:/C:/Users/Sumit/Desktop/s%20folder/SAMPLETEXT.txt


File file = new File("C:/Users/Sumit/Desktop/s folder/SAMPLETEXT.txt");
file.toURI();//This will return the same string for you.

I will rather use direct string to avoid creating extra file object.

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