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I have xml like this:

<?xml version="1.0" encoding="utf-8"?>
<session xmlns="http://winscp.net/schema/session/1.0" name="blah@blah.com" start="2011-10-03T15:09:30.481Z">
  <ls>
    <destination value="/incoming/monthly" />
    <files>
      <file>
        <filename value="2.txt" />
        <type value="D" />
        <modification value="2011-09-14T12:58:26.000Z" />
        <permissions value="rwxr-xr-x" />
      </file>
      <file>
        <filename value="3.txt" />
        <type value="D" />
        <modification value="2011-01-03T22:04:55.000Z" />
        <permissions value="rwxr-xr-x" />
      </file>
    </files>
    <result success="true" />
  </ls>
</session>

My representation of the following is:

  <XmlRoot("session", Namespace:="http://winscp.net/schema/session/1.0")>
    Class XMLSession
        <XmlElement("ls/files/file")>
        Public Property FileList As New List(Of XMLFile)
    End Class

 <XmlType("file")>
    Class XMLFile
        <XmlElement("filename")>
        Public Property FileName As XMLValueAttribute
        <XmlElement("type")>
        Public Property TypeName As XMLValueAttribute
        <XmlElement("permissions")>
        Public Property Permissions As XMLValueAttribute
        <XmlElement("modification")>
        Public Property ModificationDate As XMLValueAttribute
    End Class

  Class XMLValueAttribute
        <XmlAttribute("value")>
        Public Property Value As String
    End Class

Why is XMLSession.FileList.Count always 0. I hypothesize it has something to do with the declaration above it but I am not sure what is wrong with it. Maybe it can't accept a path, if not, how can I do it?

share|improve this question
    
Is your XML format fixed? It looks like it could use some work. For example, instead of <file><filename value="2.txt" /></file>, something like <file filename="2.txt" /> would make more sense - it looks like all of your sub-elements just have the one value. If you made this change, your serialization would be a lot easier as well. –  Joe Enos Oct 3 '11 at 17:55
    
This format is generated by WinSCP so I have no control over it –  Denis Oct 3 '11 at 18:26

2 Answers 2

up vote 4 down vote accepted

You can't describe multiple levels of XML with a single XmlElementAttribute. You need classes for each level.

share|improve this answer
    
Is there a way to avoid having classes for each one? –  Denis Oct 3 '11 at 17:51
    
@marc_s: Your comment isn't entirely right. You don't need a class for "files" for example if you use <XMLArray("files")>. Now if only I didn't need a class for "Ls" –  Denis Oct 3 '11 at 19:52

If you don't want to build the classes by hand, you can get the tools to do it for you:

Assuming your XML is saved in data.xml:

xsd.exe data.xml

This will give you data.xsd which defines the XML.

xsd.exe /l:VB /n:SomeNamespace /c data.xsd

This will give you a codefile data.vb with your types defined, which you can add to your project.

Problem with this one is that there's some kind of bug, described here, which throws an error when you create a serializer around this new type. So you just need one manual tweak on the generated code, changing:

<XmlArrayItemAttribute("file", GetType(sessionLSFilesFile), IsNullable:=False)> _
'To
<XmlArrayItemAttribute("file", GetType(sessionLSFilesFile()), IsNullable:=False)> _
share|improve this answer
    
wish I knew about this one before I started ;-) Thanks –  Denis Oct 3 '11 at 19:56
    
@Denis: it's all in the documentation. –  John Saunders Oct 3 '11 at 21:41

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