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I want to create a custom XML structure as follows:

<Hotels>
    <Hotel />
</Hotels>

I've created an implementation of List just to be able to do this. My code is as follows:

[XmlRootAttribute(ElementName="Hotels")]
public class HotelList: List<HotelBasic>

Because the class that List holds is not named Hotel but HotelBasic my xml is like

<Hotels>
   <HotelBasic />
</Hotels>

How do I fix this without having to implement ISerializable or IEnumerable?

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Do you want serialize or deserialize? –  abatishchev Nov 24 '11 at 9:07

3 Answers 3

up vote 9 down vote accepted

Assuming you are using XmlSerializer, if all you want to do is change how your HotelBasic class is serialized, you can use XmlTypeAttribute:

[XmlType(TypeName = "Hotel")]
public class HotelBasic
{
    public string Name { get; set; }
}

When used with your HotelList class it will be serialized as:

<Hotels xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:xsd="http://www.w3.org/2001/XMLSchema">
  <Hotel>
    <Name>One</Name>
  </Hotel>
  <Hotel>
    <Name>Two</Name>
  </Hotel>
</Hotels>
share|improve this answer
[XmlArray("Hotels")]
[XmlArrayItem(typeof(Hotel), ElementName="Hotel")]
public HotelList[] Messages { get; set; }

should produce:

<Hotels>
    <Hotel />
    <Hotel />
</Hotels>

[XmlRoot("Hotels")]
public class HotelList : IXmlSerializable
{
    public System.Xml.Schema.XmlSchema GetSchema()
    {
        return null;
    }

    public void ReadXml(XmlReader reader)
    {
        this.Hotels = from h in XDocument.Load(Reader)
                      select new Hotel
                      {
                          Name = (string)h.Attribute("name")
                      }
                      .ToList();
    }

    public void WriteXml(XmlWriter writer)
    {
        throw new NotSupportedException();
    }
}
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I need to use List<HotelBasic>, not HotelBasic[] –  Odys Nov 24 '11 at 8:52
    
@odyodyodys: 1. XmlSerializer supports only array. 2. You asked for IEnumerable<T>, array implements it. 3. You do not want List<T> because it's a expendable container, but list in xml is final. 4. You can create list calling ToList(). –  abatishchev Nov 24 '11 at 8:54
    
I am using Lists methods like Find and lots more. It would be just pain to reimplement List –  Odys Nov 24 '11 at 8:57
    
@odyodyodys: You can call ToList().Find(...), or use not XmlSerializer and set of attributes, but mark only root element and implement IXmlSerializable for custom structure. –  abatishchev Nov 24 '11 at 9:00
    
@abatishchev: oops, you're right. –  Fischermaen Nov 24 '11 at 9:01

I think madd0 shows the simplest option for you here, but just for completeness... personally I don't recommend the "serialize the list as the root object" - for various reasons (including: I've seen those attributes not work on at least on platform - might have been CF or SL, can't remember). Instead, I always advise using a custom root type:

[XmlRoot("Hotels")]
public class HotelResult // or something similar
{
    [XmlElement("Hotel")]
    public List<HotelBasic> Hotels { get { return hotel; } }

    private readonly List<HotelBasic> hotels = new List<HotelBasic>();
}

This will have the same xml structure, and allows greater flexibility (you can add other attributes / elements to the root), and doesn't bake List<T> into your type model (prefer encapsulation over inheritance, etc).

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