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I want to save my object to hard disk (like cache) with XmlSerializer. In this case, I don't have any problem.

However, when I want to deserialize this XML to an object, I get an error. Is there any way to deserialize XML to an unknown object or to an object that I created?

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1  
Code? Exception? –  Scoregraphic Oct 13 '09 at 6:49
1  
in what language ? –  Rahul Oct 13 '09 at 6:50

4 Answers 4

There is no way in .Net to deserialize to unknown object.

To successfully serialize/deserialize an XML object the class must have default constructor. The best way is to show us the exact error message. Can you do that?

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Why not first serialize the Type of your class (System.Type class is Serializable)?

Then you can check which type was serialized and create the proper instance.

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Another, more efficent (than either DOM or SAX) data binding approach is in this article:

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you can use SerializationHelper.DeSerializeNow as described in my post: http://borismod.blogspot.com/2008/07/nunit-serialization-test.html

internal class SerializationHelper
{
  private static readonly string DefaultFilePath = "test.dat";

  internal static void SerializeNow(object c)
  {
    SerializeNow(c, DefaultFilePath);
  }

  internal static void SerializeNow(object c, string filepath)
  {
   FileInfo f = new FileInfo(filepath);
   using (Stream s = f.Open(FileMode.Create))
   {
      BinaryFormatter b = new BinaryFormatter();
    b.Serialize(s, c);
   }
  }

  internal static object DeSerializeNow()
  {
    return DeSerializeNow(DefaultFilePath);
  }

  internal static object DeSerializeNow(string filepath)
  {
    FileInfo f = new FileInfo(filepath);
    using (Stream s = f.Open(FileMode.Open))
    {
      BinaryFormatter b = new BinaryFormatter();
      return b.Deserialize(s);
    }
  }
}
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1  
The question is about XML serialization, not binary serialization... –  Thomas Levesque Oct 13 '09 at 8:58
    
Sorry, I missed the XML in the question. You can use this one: What exception are you getting? public Object DeserializeObject(String pXmlizedString) { XmlSerializer xs = new XmlSerializer(typeof(Automobile)); MemoryStream memoryStream = new MemoryStream(StringToUTF8ByteArray(pXmlizedString)); XmlTextWriter xmlTextWriter = new XmlTextWriter(memoryStream, Encoding.UTF8); return xs.Deserialize(memoryStream); } –  Boris Modylevsky Oct 13 '09 at 16:24

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