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I have a C# class that I have inherited. I have successfully "built" the object. But I need to serialize the object to XML. My question is, is there an easy way to do it? It looks like the class has been setup for serialization, but I'm not sure how to get the XML representation. My class definition looks like this:

[System.CodeDom.Compiler.GeneratedCodeAttribute("xsd", "4.0.30319.1")]
[System.SerializableAttribute()]
[System.Diagnostics.DebuggerStepThroughAttribute()]
[System.ComponentModel.DesignerCategoryAttribute("code")]
[System.Xml.Serialization.XmlTypeAttribute(AnonymousType = true, Namespace = "http://www.domain.com/test")]
[System.Xml.Serialization.XmlRootAttribute(Namespace = "http://www.domain.com/test", IsNullable = false)]
public partial class MyObject
{
  ...
}

Here is what I thought I could do, but it doesn't work:

MyObject o = new MyObject();
// Set o properties
string xml = o.ToString();

How do I get the XML representation of this object?

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9 Answers 9

up vote 81 down vote accepted

You have to use XmlSerializer for XML serialization, below the sample snippet

 XmlSerializer xsSubmit = new XmlSerializer(typeof(MyObject));
 var subReq = new MyObject();
 StringWriter sww = new StringWriter();
 XmlWriter writer = XmlWriter.Create(sww);
 xsSubmit.Serialize(writer, subReq);
 var xml = sww.ToString(); // Your xml
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2  
Seems to work perfectly well without the line XmlWriter writer = XmlWriter.Create(sww); –  Paul Hunt Jun 27 at 10:52
10  
using people use usings! Dispose those objects! –  Liam Sep 11 at 16:25

You can use the function like bellow to get Serialized XML from any object.

public static bool Serialize<T>(T value, ref string serializeXml)
{
    if (value == null)
    {
        return false;
    }
    try
    {
        XmlSerializer xmlserializer = new XmlSerializer(typeof(T));
        StringWriter stringWriter = new StringWriter();
        XmlWriter writer = XmlWriter.Create(stringWriter);

        xmlserializer.Serialize(writer, value);

        serializeXml = stringWriter.ToString(); 

        writer.Close();
        return true;
    }
    catch (Exception ex)
    {
        return false;
    }
}

You can call this from client.

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2  
Thanks Imrul. I modified mine to return a string rather than use a ref variable - see post below. –  Kwex May 31 '13 at 8:41

This function can be copied to any object to add an xml save function using the System.Xml namespace.

/// <summary>
/// Saves to an xml file
/// </summary>
/// <param name="FileName">File path of the new xml file</param>
public void Save(string FileName)
{
    using (var writer = new System.IO.StreamWriter(FileName))
    {
        var serializer = new XmlSerializer(this.GetType());
        serializer.Serialize(writer, this);
        writer.Flush();
    }
}

To create the object from the saved file, add this function and replace [ObjectType] with the object type to be created.

/// <summary>
/// Load an object from an xml file
/// </summary>
/// <param name="FileName">Xml file name</param>
/// <returns>The object created from the xml file</returns>
public static [ObjectType] Load(string FileName)
{
    using (var stream = System.IO.File.OpenRead(FileName))
    {
        var serializer = new XmlSerializer(typeof([ObjectType]));
        return serializer.Deserialize(stream) as [ObjectType];
    }
}
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Thanks Imrul. I modified mine to return a string rather than use a ref variable like below

public static string Serialize<T>(this T value)
{
    if (value == null)
    {
        return string.Empty;
    }
    try
    {
        var xmlserializer = new XmlSerializer(typeof(T));
        var stringWriter = new StringWriter();
        using (var writer = XmlWriter.Create(stringWriter))
        {
            xmlserializer.Serialize(writer, value);
            return stringWriter.ToString();
        }
    }
    catch (Exception ex)
    {
        throw new Exception("An error occurred", ex);
    }
}

It's usage would be like this:

var xmlString = obj.Serialize();
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2  
very nice solution , I like the way you implemented this as an extention method –  Spyros Aug 30 '13 at 11:38
2  
One thing I'd suggest here: remove the try...catch block. It doesn't give you any benefit and just obfuscates the error that's being thrown. –  jammycakes Oct 20 at 10:50

To serialize an object:

 using (StreamWriter myWriter = new StreamWriter(path, false))
 {

     XmlSerializer mySerializer = new XmlSerializer(typeof(your_object_type));
     mySerializer.Serialize(myWriter, objectToSerialize);
 }

Edit: also remeber that for XmlSerializer to work, you need a parameterless constructor.

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It's a little bit more complicated than calling the ToString method of the class, but not much.

Here's a simple drop-in function you can use to serialize any type of object. It returns a string containing the serialized XML contents:

public string SerializeObject(object obj)
{
    System.Xml.XmlDocument xmlDoc = new System.Xml.XmlDocument();
    System.Xml.Serialization.XmlSerializer serializer = new System.Xml.Serialization.XmlSerializer(obj.GetType());
    using (System.IO.MemoryStream ms = new System.IO.MemoryStream()) {
        serializer.Serialize(ms, obj);
        ms.Position = 0;
        xmlDoc.Load(ms);
        return xmlDoc.InnerXml;
    }
}
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Here is a good tutorial on how to do this

You should basically use System.Xml.Serialization.XmlSerializer class to do this.

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Extension class:

using System.IO;
using System.Xml;
using System.Xml.Serialization;

namespace MyProj.Extensions
{
    public static class XmlExtension
    {
        public static string Serialize<T>(this T value)
        {
            if (value == null) return string.Empty;

            var xmlserializer = new XmlSerializer(typeof(T));

            using (StringWriter stringWriter = new StringWriter())
            {
                using (var writer = XmlWriter.Create(stringWriter,new XmlWriterSettings{Indent = true}))
                {
                    xmlserializer.Serialize(writer, value);
                    return stringWriter.ToString();
                }    
            }
        }
    }
}

Usage:

Foo foo = new Foo{MyProperty="I have been serialized"};

string xml = foo.Serialize();

Just reference the namespace holding your extension method in the file you would like to use it in and it'll work (in my example it would be: using MyProj.Extensions;)

Note that if you want to make the extension method specific to only a particular class(eg., Foo), you can replace the T argument in the extension method, eg. public static string Serialize(this Foo value){...}

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I tried this code, since it appears to be the cleanest, but on last line it doesn't offers the "Serialize()" method. What am I missing? –  user312305 22 hours ago
    
@user312305 My sincerest apologies, I posted the wrong version. Please see my edited answer, no need for inheritance, it just applies to all objects! –  Aleksandr Albert 21 hours ago
    
Very nice, my friend! Now I just use XmlExtension.Serialize(foo); and everything's good! Many thanks. –  user312305 20 hours ago
    
You're welcome, in fact you can just call foo.Serialize() now, all of your objects have the method Serialize() once you reference the extension namespace :) –  Aleksandr Albert 15 hours ago

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