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url = new java.net.URL(s) doesn't work for me.

I have a string C:\apache-tomcat-6.0.29\webapps\XEPServlet\files\m1.fo and need to make a link and give it to my formatter for output, but malformed url recieved. It seems that it doesn't make my string to url. I want also mention, that file m1.fo file is in files folder, in my webapp\product\, and I gave the full path to string like: getServletContext().getRealPath("files/m1.fo"). What I am doing wrong? How can I recieve the url link?

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7  
Please take a moment to accept a few answers on some of your previous questions first. – dkarp Jan 14 '11 at 21:53
1  
@davogotland -- it should NOT be expected to be at 100%. One of his questions has no answer, and some of them don't seem to have any clear winner for an answer. 0% is a disincentive, but don't punish someone for not having 100% or even 75%. – Jason S Jan 14 '11 at 22:01
up vote 0 down vote accepted

A file system path is not a URL. A URL is going to need a protocol prefix for one. To reference file system use "file:" in front of your path.

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I set the path file:///C:/apache-tomcat-6.0.29/webapps/XEPServlet/files/m1.fo and also used this: java.net.URL url = null; try{ url = new java.net.URL(s); } catch(java.net.MalformedURLException e){ errors = true; errorReport += "malformed url: '"+s+"'\n"; } return url; – userN Jan 15 '11 at 15:30
    
Hi. I have already started my webservice, but it formats the file with static path. Now I want to keep the same path, but take any file. My uploader gives the path like file:///C:\Documents and Settings\Administrator\Desktop\m1.fo Question is : How can I take just the name from this path- file:///C:\Documents and Settings\Administrator\Desktop\m1.fo ??? Thank you in advance – userN Jan 16 '11 at 12:13
    
Take a look at the URL class javadoc. There are a number of methods that allow you to retrieve various parts of the URL. – Konstantin Komissarchik Jan 17 '11 at 23:47

It is possible to get an URL from a file path with the java.io.File API :

String path = "C:\\apache-tomcat-6.0.29\\webapps\\XEPServlet\\files\\m1.fo";
File f = new File(path);
URL url = f.toURI().toURL();
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2  
You're going to need to escape those backslashes. – dkarp Jan 14 '11 at 22:00
    
You're right, I update the message. – Jcs Jan 14 '11 at 22:03
2  
You don't need backslashes in filenames at all in Java. Use /. – EJP Jan 15 '11 at 0:31

Try: file:///C:/apache-tomcat-6.0.29/webapps/XEPServlet/files/m1.fo

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It isn't preferable to write file:/// . Indeed it works on windows system,but in unix - there were problems. Instead of using

myReq.put("xml", new String []{"file:" + System.getProperty("file.separator") + 
                        getServletContext().getRealPath(DESTINATION_DIR_PATH) + 
                        System.getProperty("file.separator") + xmlfile}); 

you can write

myReq.put("xml", new String [] {getUploadedFileURL (xmlfile)} );

, where

public String getUploadedFileURL(String filename) {
    java.io.File filePath = new java.io.File(new 
            java.io.File(getServletContext().getRealPath(DESTINATION_DIR_PATH)), 
            filename);

    return filePath.toURI().toURL().toString();
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Ok +1 for me, but maybe the solution could be exposed more clearly, I guess. – Payedimaunt Aug 26 '15 at 8:11

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