When using a standard .NET Xml Serializer, is there any way I can hide all null values? The below is an example of the output of my class. I don't want to output the nullable integers if they are set to null.

Current Xml output:

<?xml version="1.0" encoding="utf-8"?>
<myClass>
   <myNullableInt p2:nil="true" xmlns:p2="http://www.w3.org/2001/XMLSchema-instance" />
   <myOtherInt>-1</myOtherInt>
</myClass>

What I want:

<?xml version="1.0" encoding="utf-8"?>
<myClass>
   <myOtherInt>-1</myOtherInt>
</myClass>
up vote 208 down vote accepted

You can create a function with the pattern ShouldSerialize{PropertyName} which tells the XmlSerializer if it should serialize the member or not.

For example, if your class property is called MyNullableInt you could have

public bool ShouldSerializeMyNullableInt() 
{
  return MyNullableInt.HasValue;
}

Here is a full sample

public class Person
{
  public string Name {get;set;}
  public int? Age {get;set;}
  public bool ShouldSerializeAge()
  {
    return Age.HasValue;
  }
}

Serialized with the following code

Person thePerson = new Person(){Name="Chris"};
XmlSerializer xs = new XmlSerializer(typeof(Person));
StringWriter sw = new StringWriter();
xs.Serialize(sw, thePerson);

Results in the followng XML - Notice there is no Age

<Person xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance"
        xmlns:xsd="http://www.w3.org/2001/XMLSchema">
  <Name>Chris</Name>
</Person>
  • 7
    One word: Awesome! MSDN ShouldSerialize – scheien Feb 27 '13 at 9:24
  • 6
    The ShouldSerialize pattern does only work, if the property is not marked with an XmlAttribute-attribute (I thought this should work, because an attribute could be optional, but it does not). – Matze Apr 30 '13 at 11:43
  • @Matze interesting, I have not tried that. I would also have assumed it would work. – Chris Taylor Apr 30 '13 at 19:33
  • @ChrisTaylor Yes; I assumed the same. The tricky thing was that the creation of the XmlSerializer instance failed (due to an error when reflecting the type) until I removed the XmlAttribute from the nullable int-property. – Matze May 3 '13 at 11:52
  • 1
    @PierredeLESPINAY - From visual studio 2015 and up, you could use: public bool ShouldSerializeAge() => Age.HasValue; – RooiWillie Feb 21 at 18:33

Additionally to what Chris Taylor wrote: if you have something serialized as an attribute, you can have a property on your class named {PropertyName}Specified to control if it should be serialized. In code:

public class MyClass
{
    [XmlAttribute]
    public int MyValue;

    [XmlIgnore]
    public bool MyValueSpecified;
}
  • Be carefull, {PropertyName}Specified attributes have to be of type bool. – sinsedrix Dec 10 '12 at 8:32
  • @sinsedrix Thanks! I've updated the code. – Daniel Rose Dec 10 '12 at 11:55
  • 4
    doesn't work in .NET 4.5 – Kelmen Sep 10 '15 at 9:52

It exists a property called XmlElementAttribute.IsNullable

If the IsNullable property is set to true, the xsi:nil attribute is generated for class members that have been set to a null reference.

The following example shows a field with the XmlElementAttribute applied to it, and the IsNullable property set to false.

public class MyClass
{
   [XmlElement(IsNullable = false)]
   public string Group;
}

You can have a look to other XmlElementAttribute for changing names in serialization etc.

  • 8
    Unfortunately, this only works for reference types, not for value types or their Nullable counterparts. – Vincent Sels May 27 '13 at 14:46
  • 2
    @VincentSels is correct. MSDN says: You cannot apply the IsNullable property to a member typed as a value type because a value type cannot contain null. Additionally, you cannot set this property to false for nullable value types. When such types are null, they will be serialized by setting xsi:nil to true. – bouvierr Oct 30 '14 at 13:25

You can define some default values and it prevents the fields from being serialized.

    [XmlElement, DefaultValue("")]
    string data;

    [XmlArray, DefaultValue(null)]
    List<string> data;
  • 2
    does not work as expected when deserialising XML – Jason Loki Smith Dec 1 '15 at 6:55
private static string ToXml(Person obj)
{
  XmlSerializerNamespaces namespaces = new XmlSerializerNamespaces();
  namespaces.Add(string.Empty, string.Empty);

  string retval = null;
  if (obj != null)
  {
    StringBuilder sb = new StringBuilder();
    using (XmlWriter writer = XmlWriter.Create(sb, new XmlWriterSettings() { OmitXmlDeclaration = true }))
    {
      new XmlSerializer(obj.GetType()).Serialize(writer, obj,namespaces);
    }
    retval = sb.ToString();
  }
  return retval;
}

In my case the nullable variables/elements were all String type. So, I simply performed a check and assigned them string.Empty in case of NULL. This way I got rid of the unnecessary nil and xmlns attributes (p3:nil="true" xmlns:p3="http://www.w3.org/2001/XMLSchema-instance)

// Example:

myNullableStringElement = varCarryingValue ?? string.Empty

// OR

myNullableStringElement = myNullableStringElement ?? string.Empty
  • 1
    This solutions very limited and only works with string. For other types empty string is still a value. Some parsers try to find attribute and if found try to convert the value to target type. For such parsers, missing attribute means null and if there is attribute then it must have a valid value. – ZafarYousafi Jul 16 '14 at 23:16

I prefer creating my own xml with no auto-generated tags. In this I can ignore creating the nodes with null values:

public static string ConvertToXML<T>(T objectToConvert)
    {
        XmlDocument doc = new XmlDocument();
        XmlNode root = doc.CreateNode(XmlNodeType.Element, objectToConvert.GetType().Name, string.Empty);
        doc.AppendChild(root);
        XmlNode childNode;

        PropertyDescriptorCollection properties = TypeDescriptor.GetProperties(typeof(T));
        foreach (PropertyDescriptor prop in properties)
        {
            if (prop.GetValue(objectToConvert) != null)
            {
                childNode = doc.CreateNode(XmlNodeType.Element, prop.Name, string.Empty);
                childNode.InnerText = prop.GetValue(objectToConvert).ToString();
                root.AppendChild(childNode);
            }
        }            

        return doc.OuterXml;
    }

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