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I'm looking to read from a XML file which is stored within a zip file. I'm having TONs of issues understanding how to do this. The best I seem to be able to do is get an input stream working, BUT I CAN'T UNDERSTAND HOW TO READ IT! So I know that its the right file, no I want to pass the data to a XML parser I have. However I don't really understand what the input stream is, or how to manipulate it properly. I've seen it used before with a buffer and then reading into the buffer, my question with this is how do we properly choose the size of the buffer if it is a sufficiently large file?

Any help would be great, thanks!

ZipFile zf;
    try {
        zf = new ZipFile(directory);
        CharBuffer charBuffer = CharBuffer.allocate(BUFFER_SIZE);
      for (Enumeration<? extends ZipEntry> e = zf.entries();
            e.hasMoreElements();) {
        ZipEntry ze = e.nextElement();
        String name = ze.getName();
        if (name.endsWith(".xml")) {
          InputStream in = zf.getInputStream(ze);
          // read from 'in
        }
      }
    } catch (IOException e1) {
        System.out.println("Sorry we couldn't find the file");
        e1.printStackTrace();
    }
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3 Answers 3

up vote 1 down vote accepted

You mean as in this?

DocumentBuilderFactory docBuilderFactory = DocumentBuilderFactory.newInstance();
DocumentBuilder docBuilder = docBuilderFactory.newDocumentBuilder();
Document document = docBuilder.parse(in);

Or do you mean you already have a specific XML parser that doesn't take an InputStream - what does it take?

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What library is Document from? I'm having some problems with it. –  jQwierdy Oct 7 '12 at 5:14
    
I think org.w3c.dom.Document –  user1406062 Oct 7 '12 at 5:34

A simple google search can lead you to tons of articles explaining the code work involved to parse XML. Why not just search then?

One of them: http://www.java-samples.com/showtutorial.php?tutorialid=152

I'm not including how to unzip a file because you've mentioned that you're through with that, but if you're looking for options I'll edit my answer.

Happy Java Coding. :)

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XML parsing is the easy part, how do I get my inputStream to convert to an XML? I literally don't know what to do from the inputstream only. –  jQwierdy Oct 7 '12 at 4:58
1  
You need to know about the input stream first, in which format is the inputStream? Then study about the format, learn which bits mean what and the basic data parsing approaches for that particular type of data stream. @jQwierdy –  Sean Vaughn Oct 7 '12 at 5:06

You can either use SAX or StAX to parse/read the stream - Reference JAXP

With Stream API,

 XMLStreamReader reader=XMLInputFactory.newFactory().createXMLStreamReader(in);
 while(reader.hasNext())
 {
  System.out.println(reader.next());
  System.out.println(reader.getLocalName());
 }

With SAX,

SAXParserFactory.newInstance().newSAXParser().parse(in, new YourHandler());
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