Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

How do I get the attributes to the inner element rather than root element?

[XmlRoot("Root")]
public class Test
{
    string type=null;
    int value=0;
    public string Type
    {
        get { return type; }
        set { type=value; }
    }
    [XmlAttribute]
    public int Value
    {
        get { return type; }
        set { type=value; }
    }
}

will result into

<Root Value="">
    <Type>
    </Type>
</Root>

However I want

<Root >
    <Type Value="">
    </Type>
</Root>

Please help me out. Thanks in advance.

share|improve this question

3 Answers 3

XmlSerializer is intended to be a natural map between the object model and the xml; the answer, then, is to structure your DTO the same as your xml. In this case, by wrapping Test in a second object:

public class Root {
    public Test Type {get;set;}
}

The alternative is implementing IXmlSerializable, but that is effort, and easy to get wrong. It isn't uncommon to require a separate object representation for serialization purposes - it shouldn't be assumed that your "regular" business/data objects are necessarily directly suitable for serialization.

share|improve this answer
    
+1 for "structure your DTO to fit your xml" –  Nader Shirazie Oct 21 '09 at 5:57

The XmlSerializer is not super customizable. The closest you can get to achieving this (without resorting to custom serialization) is a wrapper class:

[XmlRoot("Root")]
public class Test
{
    public TypeData Type { get; set; }

    // ...
}

class TypeData
{
    public string Data { get; set; }

    [XmlAttribute]
    public int Value { get; set; }
}

In that case, you'll end up with:

<Root>
  <Type Value="">
    <Data>...</Data>
  </Type>
</Root>
share|improve this answer
[XmlRoot("Root")]
public class Test
{
    TypeClass type=null;
    [XmlElement("Type")]
    public TypeClass Type
    {
       get{return type;}
       set{type=value;}
    }
}
[XmlRoot("Type")]
public class TypeClass
{
   int _value=0;
   [XMlAttribute]
   public int Value
   {
      get{return _value;}
      set{_value=value;}
   }
}

try this

share|improve this answer
    
whitespace, please! –  Danny Oct 21 '09 at 6:07

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.