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I want to deserialize the following xml in one class (with the specific properties):

<test1>
    <field1>0</field1>
    <field2>1</field2>
    <field3>2</field3>
</test1>
<test2>
    <field4>0</field4>
    <field5>1</field5>
    <field6>2</field6>
</test2>
<test3>
    <field7>0</field7>
    <field8>1</field8>
    <field9>2</field9>
</test3>

I've written the classes as follow:

    [Serializable]
    public class Result
    {
        [XmlElement("test1")]
        public Test1 T1{ get; set; }

        [XmlElement("test2")]
        public Test2 T2 { get; set; }

        [XmlElement("test3")]
        public Test3 T3 { get; set; }

    }

    [Serializable]
    public class Test1
    {
        [XmlElement("Field1")]
        public Test1 Field1{ get; set; }

        [XmlElement("Field2")]
        public Test2 Field2{ get; set; }

        [XmlElement("Field3")]
        public Test3 Field3 { get; set; }

    }
....

Unfortunately, I got the following error at deserialize:

input xmlns='' was not expected.

Thanks for your help.

Kind regards, pro

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1  
Your xml does not have a root element –  L.B Sep 4 '12 at 12:17
    
Yes I know - that is the challenge ;-) –  pro Sep 4 '12 at 12:17
    
Your xml must have one root element with name Result –  Amir Ismail Sep 4 '12 at 12:18
2  
If you are recieving the XML from a service which you cannot control why not simply read the XML into a stream then preprend & append the <Result> nodes, then deserialize the XML as a string? –  Kane Sep 4 '12 at 12:19
    
@pro challenge?!!! your xml is not valid so you cannot deserialize it –  Amir Ismail Sep 4 '12 at 12:20
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1 Answer

up vote 1 down vote accepted

Add a <Result>...</Result> element around the XML. If they are missing, prepend and append them. If a different root element is present, add the [XmlRoot("name")] element to the Result class.

The easiest way to solve XML serialization problems is to populate an object then serialize it using XmlSerializer.Serialize() and look at the resulting XML.

share|improve this answer
    
I can't I get them from a webservice. –  pro Sep 4 '12 at 12:18
    
@pro There will be some root element in the resulting web service XML. Make that the name of the class or use [XmlRoot("name")] attribute. If not, manually append and prepend the root elements. I have updated my answer accordingly. –  akton Sep 4 '12 at 12:21
    
Thanks that was it! –  pro Sep 4 '12 at 12:24
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