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So, deserializing is working however I have some xml like this:

<File>
  <Stuff>stuff</Stuff>
  <Devices>
    <Device Type="1">
      <Number>1</Number>
    </Device>
    <Device Type="2">
      <Number>2</Number>
    </Device>
  </Devices>
</File>

When it gets to the array of devices... the first device is the only one that is populated into an object. Here are the classes:

            XmlSerializer deserializer;
            XmlRootAttribute xRoot = new XmlRootAttribute();
            FileStream stream = new FileStream(CONFIG_PATH, FileMode.Open);
            XmlReader reader = new XmlTextReader(stream);

            // Details configuration area.
            xRoot.ElementName = "File";
            xRoot.IsNullable = true;
            deserializer = new XmlSerializer(typeof(File), xRoot);
            Configuration = (File)deserializer.Deserialize(reader);

[Serializable()]
[XmlRoot(ElementName = "File", IsNullable = true)]
public sealed class File
{
    [XmlElement("Devices")]
    public Devices Devices { get; set; }
}

// <summary>
/// Configuration device elements.
/// </summary>
[Serializable()]
[XmlRoot("Devices", IsNullable = true)]
public sealed class Devices
{
    [XmlElement("Device")]
    public DeviceElements[] DeviceElements { get; set; }
}

/// <summary>
/// Configuration Devices.
/// </summary>
[Serializable()]
[XmlRoot("Device", IsNullable = true)]
public sealed class DeviceElements
{
    [XmlAttribute("Type")]
    public string DeviceType { get; set; }

    [XmlElement("Number")]
    public int DeviceNumber { get; set; }
}

Again, only the first Device is populated, I've played with XmlArray And XmlArrayItem however neither of them were even giving me the first value. Any suggestions?

share|improve this question
    
Have you tried taking out all the "XmlElement" and "XmlRoot" attributes? I find serialization works best when I leave things alone as much as possible and let the framework sort it out for me. –  drharris Aug 11 '11 at 20:44
    
It won't even deserialize if I take them out. –  bl4kh4k Aug 11 '11 at 20:45
    
Try this suggestion: stackoverflow.com/questions/534451/… –  Dave Ziegler Aug 11 '11 at 20:47
    
Each Device element has to explicitly be called Device. Device could be an unlimited amount of elements within the Devices element. The suggestion above won't work in my case. –  bl4kh4k Aug 11 '11 at 20:51
1  
Good luck ! Hope you figure it out. –  user195488 Aug 11 '11 at 20:53

1 Answer 1

up vote 2 down vote accepted

You must be doing something wrong at another place. Just using the Devices part of your XML:

  <Devices>
    <Device Type="1">
      <Number>1</Number>
    </Device>
    <Device Type="2">
      <Number>2</Number>
    </Device>
  </Devices>

I was able to successfully deserialize a Devices class instance with multiple DeviceElements children given your classes above using similar code as you used in your last question:

FileStream stream = new FileStream("test.xml", FileMode.Open);
XmlReader reader = new XmlTextReader(stream);

XmlSerializer deserializer = new XmlSerializer(typeof(Devices));
var devicesResult = (Devices)deserializer.Deserialize(reader);

Edit:

Using the full XML:

<File>
  <Stuff>stuff</Stuff>
  <Devices>
    <Device Type="1">
      <Number>1</Number>
    </Device>
    <Device Type="2">
      <Number>2</Number>
    </Device>
  </Devices>
</File>

This successfully deserializes for me:

FileStream stream = new FileStream("test.xml", FileMode.Open);
XmlReader reader = new XmlTextReader(stream);

XmlRootAttribute xRoot = new XmlRootAttribute();
xRoot.ElementName = "File";
xRoot.IsNullable = true;

XmlSerializer deserializer = new XmlSerializer(typeof(File), xRoot);
var fileResult = (File)deserializer.Deserialize(reader);

On a side note - you probably shouldn't name your class the same as one already in the .NET framework (System.IO.File), also in above code example setting the Xml root is not required since you use the same name anyway, just leave this out:

FileStream stream = new FileStream("test.xml", FileMode.Open);
XmlReader reader = new XmlTextReader(stream);
XmlSerializer deserializer = new XmlSerializer(typeof(File));
var fileResult = (File)deserializer.Deserialize(reader);
share|improve this answer
    
Then maybe my issue is up the ladder, I set the deserializer typeof to a File class with this inside public sealed class File { [XmlElement("File")] public Devices Devices { get; set; } } Could this be my issue? –  bl4kh4k Aug 11 '11 at 20:56
    
@bl4kh4k: Hard to say w/o seeing a complete code sample that reproduces the problem - would be good to update the question –  BrokenGlass Aug 11 '11 at 21:24
    
Just updated with the missing class. If you can figure it out your a serializedGod. –  bl4kh4k Aug 11 '11 at 21:29
    
@bl4kh4k: It works just fine for me. Will update answer. –  BrokenGlass Aug 11 '11 at 21:51
    
Posted code in OP works for me as well. –  Kyle W Aug 12 '11 at 0:16

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