80

Suppose I have an XML-serializable class called Song:

[Serializable]
class Song
{
    public string Artist;
    public string SongTitle;
}

In order to save space (and also semi-obfuscate the XML file), I decide to rename the xml elements:

[XmlRoot("g")]
class Song
{
    [XmlElement("a")]
    public string Artist;
    [XmlElement("s")]
    public string SongTitle;
}

This will produce XML output like this:

<Song>
  <a>Britney Spears</a>
  <s>I Did It Again</s>
</Song>

I want to rename/remap the name of the class/object as well. Say, in the above example, I wish to rename the class Song to g. So that the resultant xml should look like this:

<g>
  <a>Britney Spears</a>
  <s>I Did It Again</s>
</g>

Is it possible to rename class-names via xml-attributes?

I don't wish to create/traverse the DOM manually, so I was wondering if it could be achieved via a decorator.

I'm actually serializing a list of Song objects in the XML.

Here's the serialization code:

    public static bool SaveSongs(List<Song> songs)
    {
            XmlSerializer serializer = new XmlSerializer(typeof(List<Song>));
            using (TextWriter textWriter = new StreamWriter("filename"))
            {
                serializer.Serialize(textWriter, songs);
            }
    }

And here's the XML output:

<?xml version="1.0" encoding="utf-8"?>
<ArrayOfSong>
<Song>
  <a>Britney Spears</a>
  <s>Oops! I Did It Again</s>
</Song>
<Song>
  <a>Rihanna</a>
  <s>A Girl Like Me</s>
</Song>
</ArrayOfSong>

Apparently, the XmlRoot() attribute doesn't rename the object in a list context.

Am I missing something?

5
  • 9
    I think there is an error in the XML. "I did it again" is not the correct title of the song. The correct title is; "Oops!...I Did It Again". (Just to prevent future frustrations with validators) Sep 6, 2010 at 18:09
  • 3
    FYI, [Serializable] doesn't matter to XML Serialization. Sep 6, 2010 at 18:23
  • See my updated response based on your clarification.
    – bobbymcr
    Sep 6, 2010 at 19:05
  • 3
    It's been a few years, so it might be item to update the correct answer :) The answer currently marked as correct is actually incorrect for the question asked (and does not result in the desired output). XmlTypeAttribute and its TypeName property is the correct way to do it (see below). Nov 20, 2013 at 16:34
  • @Ariel Popovsky: If you check the edits, even the very first version of the question would not have worked with XmlRoot. The OP has not been on here for 2 years, so it will continue to mislead coders everywhere :) Nov 21, 2014 at 21:39

5 Answers 5

129

Solution: Use [XmlType(TypeName="g")]

XmlRoot only works with XML root nodes as per the documentation (and what you would expect, given its name includes root)!

I was unable to get any of the other answers to work so kept digging...

Instead I found that the XmlTypeAttribute (i.e. [XmlType]) and its TypeName property do a similar job for non-root classes/objects.

e.g.

[XmlType(TypeName="g")]
class Song
{
    public string Artist;
    public string SongTitle;
}

Assuming you apply it to the other classes e.g.:

[XmlType(TypeName="a")]
class Artist
{
    .....
}

[XmlType(TypeName="s")]
class SongTitle
{
    .....
}

This will output the following exactly as required in the question:

<g>
  <a>Britney Spears</a>
  <s>I Did It Again</s>
</g>

I have used this in several production projects and found no problems with it.

10
  • it still outputs <?xml version="1.0" encoding="utf-16"?>
    – hakan
    Jan 13, 2016 at 9:24
  • 1
    @piedpiper: That is down to the output encoding, not the XmlType described here. Please ask a new question if you have one :) Jan 13, 2016 at 9:27
  • 6
    This answer works a lot better than the chosen answer. Sep 11, 2018 at 15:39
  • 1
    @DotNetProgrammer: Unfortunately the OP has not been online for many years so it remains stuck on an incorrect answer :) Sep 18, 2018 at 10:51
  • This solution does not work for me for the root node. The accepted answer works.
    – Codure
    Oct 31, 2018 at 20:07
66

Checkout the XmlRoot attribute.

Documentation can be found here: http://msdn.microsoft.com/en-us/library/system.xml.serialization.xmlrootattribute(v=VS.90).aspx

[XmlRoot(Namespace = "www.contoso.com", 
     ElementName = "MyGroupName", 
     DataType = "string", 
     IsNullable=true)]
public class Group

UPDATE: Just tried and it works perfectly on VS 2008. This code:

[XmlRoot(ElementName = "sgr")]
public class SongGroup
{
    public SongGroup()
    {
       this.Songs = new List<Song>();
    }



[XmlElement(ElementName = "sgs")]
    public List<Song> Songs { get; set; }
}

[XmlRoot(ElementName = "g")]
public class Song
{
    [XmlElement("a")]
    public string Artist { get; set; }

    [XmlElement("s")]
    public string SongTitle { get; set; }
} 

Outputs:

<?xml version="1.0" encoding="utf-8"?>
<sgr xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:xsd="http://www
.w3.org/2001/XMLSchema">
  <sgs>
    <a>A1</a>
    <s>S1</s>
  </sgs>
  <sgs>
    <a>A2</a>
    <s>S2</s>
  </sgs>
</sgr>
6
  • 19
    @Arial: Had the same problem but found the XmlRoot attribute only works on my root node (as I guess it should based on the docs). Not sure how you got the above code to work properly. Got it to work with [XmlType(TypeName = "newName")] on my classes instead. Mar 11, 2011 at 13:25
  • 2
    The Output is not correct you loose a <g>...</g> but this not solve the problem. The solution is the post of "HiTech Magic" [XmlType(TypeName="g")] Aug 8, 2013 at 11:41
  • @Ariel Popovsky, what if i want Song to be an element named "g" and Artist and SongTitle to be attributes on that element. IE, <sgr><sgs><g a="A1" s="S1" /><g a="A2" s="S2"><sgs><sgr>
    – theB3RV
    Sep 4, 2014 at 14:46
  • @theB3RV use [XmlAttribute("a")] and [XmlAttribute("s")] instead of XmlElement and you'll get attributes instead of elements. To rename the Song from sgs to g, just change the ElementName in the Songs list XmlElement Attribute. Sep 9, 2014 at 14:12
  • 3
    XmlArrayItem("g") is what i was looking for
    – theB3RV
    Sep 12, 2014 at 19:55
5

If this is the root element of the document, you can use [XmlRoot("g")].


Here is my updated response based on your clarification. The degree of control you are asking for is not possible without a wrapping class. This example uses a SongGroup class to wrap the list so that you can give alternate names to the items within.

using System;
using System.Collections.Generic;
using System.IO;
using System.Xml.Serialization;

public class SongGroup
{
    public SongGroup()
    {
        this.Songs = new List<Song>();
    }

    [XmlArrayItem("g", typeof(Song))]
    public List<Song> Songs { get; set; }
}

public class Song 
{ 
    public Song()
    {
    }

    [XmlElement("a")] 
    public string Artist { get; set; }

    [XmlElement("s")]
    public string SongTitle { get; set; }
} 

internal class Test
{
    private static void Main()
    {
        XmlSerializer serializer = new XmlSerializer(typeof(SongGroup));

        SongGroup group = new SongGroup();
        group.Songs.Add(new Song() { Artist = "A1", SongTitle = "S1" });
        group.Songs.Add(new Song() { Artist = "A2", SongTitle = "S2" });

        using (Stream stream = new MemoryStream())
        using (StreamWriter writer = new StreamWriter(stream))
        {
            serializer.Serialize(writer, group);
            stream.Seek(0, SeekOrigin.Begin);
            using (StreamReader reader = new StreamReader(stream))
            {
                Console.WriteLine(reader.ReadToEnd());
            }
        }
    }
}

This has the side effect of generating one more inner element representing the list itself. On my system, the output looks like this:

<?xml version="1.0" encoding="utf-8"?>
<SongGroup xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xmlns:xsd="http://www.w3.org/2001/XMLSchema">
  <Songs>
    <g>
      <a>A1</a>
      <s>S1</s>
    </g>
    <g>
      <a>A2</a>
      <s>S2</s>
    </g>
  </Songs>
</SongGroup>
1
  • I realise this is a very old question/answer, but the specific output they wanted is available with XmlType(TypeName="g")]. You do not need a wrapping class and can just attribute the classes themselves. Cheers. Aug 8, 2013 at 15:09
0

Use XmlElementAttribute: http://msdn.microsoft.com/en-us/library/system.xml.serialization.xmlrootattribute.aspx

[Serializable]
[XmlRoot(ElementName="g")]
class Song
{
    public string Artist;
    public string SongTitle;
}

should work.

1
  • Song is not the Root element, so this will not work. XmlRoot only applies at the root node. Sorry. Aug 9, 2013 at 10:42
-2
[XmlRoot("g")]
class Song
{
}

Should do the trick

1
  • 1
    Song is not the Root element, so this will not work. XmlRoot only applies at the root node. Sorry. Aug 9, 2013 at 10:41

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