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I need to serialize IEnumerable. At the same time I want root node to be "Channels" and second level node - Channel (instead of ChannelConfiguration).

Here is my serializer definition:

_xmlSerializer = new XmlSerializer(typeof(List<ChannelConfiguration>), new XmlRootAttribute("Channels"));

I have overriden root node by providing XmlRootAttribute but I haven't found an option to set Channel instead of ChannelConfiguration as second level node.

I know I can do it by introducing a wrapper for IEnumerable and using XmlArrayItem but I don't want to do it.

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3  
why don't you want to do the easy option? out of curiosity? (note also: using non-trivial constructors means you must cache the serializer, else you leak assemblies; the basic XmlSerializer(Type) constructor doesn't suffer this) –  Marc Gravell Nov 22 '11 at 9:14
    
Are you the owner of class ChannelConfiguration, are you able to decorate it with attributes? If yes I have probably a solution. –  achitaka-san Nov 22 '11 at 9:17
    
@MarcGravell, may be you are right and I should use a wrapper –  Idsa Nov 22 '11 at 9:22
    
@achitaka-san, yes, I am an owner of this class –  Idsa Nov 22 '11 at 9:22

2 Answers 2

up vote 7 down vote accepted

Like so:

XmlAttributeOverrides or = new XmlAttributeOverrides();
or.Add(typeof(ChannelConfiguration), new XmlAttributes
{
    XmlType = new XmlTypeAttribute("Channel")
});
var xmlSerializer = new XmlSerializer(typeof(List<ChannelConfiguration>), or,
     Type.EmptyTypes, new XmlRootAttribute("Channels"), "");
xmlSerializer.Serialize(Console.Out,
     new List<ChannelConfiguration> { new ChannelConfiguration { } });

Note you must cache and re-use this serializer instance.

I will also say that I strongly recommend you use the "wrapper class" approach - simpler, no risk of assembly leakage, and IIRC it works on more platforms (pretty sure I've seen an edge-case where the above behaves differently on some implementations - SL or WP7 or something like that).

If you have access to the type ChannelConfiguration, you can also just use:

[XmlType("Channel")]
public class ChannelConfiguration
{...}

var xmlSerializer = new XmlSerializer(typeof(List<ChannelConfiguration>),
     new XmlRootAttribute("Channels"));
xmlSerializer.Serialize(Console.Out,
     new List<ChannelConfiguration> { new ChannelConfiguration { } });
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+1 for mentioning the need for caching. –  Phill Nov 22 '11 at 9:34

This should do the trick, if I remember correctly.

[XmlType("Channel")] 
public class ChannelConfiguration {

}
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1  
Works only if you own the class and can decorate it. –  achitaka-san Nov 22 '11 at 9:19
    
No, it doesn't :( XmlElement can't be applied to a class –  Idsa Nov 22 '11 at 9:19
    
I think you meaned XmlRoot("Channel") ? –  Alexander Mavrinsky Nov 22 '11 at 9:26
    
I ment XmlType. –  Jordy Langen Nov 22 '11 at 21:10
    
When the object is part of a List<myObjects>, XmlRoot doesn't work...but XmlType DOES. This fixed my issue, Thanks @JordyLangen. –  Nevyn Jan 19 at 17:57

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