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The problem is that every time I execute the main method, the old content of a.xml is lost and is substituted with a new one. How to append content to the a.xml file without losing the previous information?

import java.io.FileNotFoundException;
import java.io.PrintWriter;

import com.thoughtworks.xstream.XStream;
import com.thoughtworks.xstream.io.xml.DomDriver;


public class Test {
    public static void main(String[] args) throws FileNotFoundException {
        XStream xs = new XStream(new DomDriver());
        Foo f = new Foo(1, "booo", new Bar(42));
        PrintWriter pw = new PrintWriter("a.xml");
        xs.toXML(f,pw);
    }
}


public class Bar {
    public int id;

    public Bar(int id) {
        this.id = id;
    }

}


public class Foo {
    public int a;
    public String b;
    public Bar boo;
    public Foo(int a, String b, Bar c) {
        this.a = a;
        this.b = b;
        this.boo = c;
    }
}
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2 Answers

up vote 2 down vote accepted

Sample Code

public static void main(String a[]){
  //Other code omitted
  FileOutputStream fos = new FileOutputStream("c:\\yourfile",true); //true specifies append
  Foo f = new Foo(1, "booo", new Bar(42));
  xs.toXML(f,fos);
}
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Thank you very much :) –  brain_damage Jun 29 '10 at 18:02
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The question is, do you really want to append the serialized XML string to the file or do you want to add the new Foo instance to the XML structure.

Appending on a string basis would result in invalid XML about like this:

<foo>
  <a>1</a>
  <b>booo</b>
  <bar>
    <id>42</id>
  </bar>
</foo>
<foo>
  <a>1</a>
  <b>booo</b>
  <bar>
    <id>42</id>
  </bar>
</foo>

Instead you may want to preserve the data in a.xml by parsing it first, then add the new element and serialize the whole collection/array.

So something like this (assuming there is already a collection of Foos in a.xml):

List foos = xs.fromXml(...);
foos.add(new Foo(1, "booo", new Bar(42)));
xs.toXml(foos, pw);

... which gives you something along the lines of this:

<foos>
  <foo>
    <a>1</a>
    <b>booo</b>
    <bar>
      <id>42</id>
    </bar>
  </foo>
  <foo>
    <a>1</a>
    <b>booo</b>
    <bar>
      <id>42</id>
    </bar>
  </foo>
</foos>

HTH

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Yes, that's just what I want to do. But what if the file is empty? Then List foos = xs.fromXML(...) won't be valid :? –  brain_damage Jun 29 '10 at 18:22
    
You'll have to handle some special cases, that's true. But depending on XStream you will either get an exception or null, which you can then catch or check and proceed from there. –  Martin Klinke Jun 29 '10 at 18:34
    
Thanks, Martin :) –  brain_damage Jun 29 '10 at 18:41
    
You're welcome. Good luck with the rest ;) –  Martin Klinke Jun 29 '10 at 19:09
1  
Yes this is one way to do it. However, loading and then saving all for the goal of saving can be quite a tedious task. –  user238033 Mar 4 '13 at 10:22
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