147

Given the following XML:

<?xml version="1.0"?>
<user_list>
   <user>
      <id>1</id>
      <name>Joe</name>
   </user>
   <user>
      <id>2</id>
      <name>John</name>
   </user>
</user_list>

And the following class:

public class User {
   [XmlElement("id")]
   public Int32 Id { get; set; }

   [XmlElement("name")]
   public String Name { get; set; }
}

Is it possible to use XmlSerializer to deserialize the xml into a List<User> ? If so, what type of additional attributes will I need to use, or what additional parameters do I need to use to construct the XmlSerializer instance?

An array ( User[] ) would be acceptable, if a bit less preferable.

130

You can encapsulate the list trivially:

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

[XmlRoot("user_list")]
public class UserList
{
    public UserList() {Items = new List<User>();}
    [XmlElement("user")]
    public List<User> Items {get;set;}
}
public class User
{
    [XmlElement("id")]
    public Int32 Id { get; set; }

    [XmlElement("name")]
    public String Name { get; set; }
}

static class Program
{
    static void Main()
    {
        XmlSerializer ser= new XmlSerializer(typeof(UserList));
        UserList list = new UserList();
        list.Items.Add(new User { Id = 1, Name = "abc"});
        list.Items.Add(new User { Id = 2, Name = "def"});
        list.Items.Add(new User { Id = 3, Name = "ghi"});
        ser.Serialize(Console.Out, list);
    }
}
  • 5
    Nice solution with the [XmlElement("user")] to avoid an extra level of elements. Looking at this, I thought for sure that it would have emitted a <user> or <Items> node (if you did not have the XmlElement attribute), and then add <user> nodes under that. But I tried it and it did not, thus emitting exactly what the question wanted. – Jon Kragh Jul 26 '10 at 16:38
  • What if I had two lists under UserList above? I tried your method and it says it already defines a member called XYZ with the same parameter types – Kala J Apr 24 '14 at 20:45
  • I don't know why this is marked as right answer. It includes adding a class to wrap the list. That was certainly what the question is trying to avoid. – DDRider62 Dec 31 '16 at 15:00
  • 1
    @DDRider62 the question doesn't say "without wrapping". Most people are pretty pragmatic and just want to get the data out. This answer allows you to do that, via the .Items member. – Marc Gravell Dec 31 '16 at 18:42
46

If you decorate the User class with the XmlType to match the required capitalization:

[XmlType("user")]
public class User
{
   ...
}

Then the XmlRootAttribute on the XmlSerializer ctor can provide the desired root and allow direct reading into List<>:

    // e.g. my test to create a file
    using (var writer = new FileStream("users.xml", FileMode.Create))
    {
        XmlSerializer ser = new XmlSerializer(typeof(List<User>),  
            new XmlRootAttribute("user_list"));
        List<User> list = new List<User>();
        list.Add(new User { Id = 1, Name = "Joe" });
        list.Add(new User { Id = 2, Name = "John" });
        list.Add(new User { Id = 3, Name = "June" });
        ser.Serialize(writer, list);
    }

...

    // read file
    List<User> users;
    using (var reader = new StreamReader("users.xml"))
    {
        XmlSerializer deserializer = new XmlSerializer(typeof(List<User>),  
            new XmlRootAttribute("user_list"));
        users = (List<User>)deserializer.Deserialize(reader);
    }

Credit: based on answer from YK1.

  • 10
    In my point of view, this is clearly THE answer to the question. The question was about deserializing into List<T>. All the other solutions, except maybe one, include a wrapping class to contain the list, which was certainly not the question posted, and what the author of the question seems to be trying to avoid. – DDRider62 Dec 31 '16 at 14:59
  • With this approach, the XmlSerializer must be statically cached and reused to avoid a severe memory leak, see Memory Leak using StreamReader and XmlSerializer for details. – dbc Sep 2 '18 at 15:48
16

Yes, it will serialize and deserialize a List<>. Just make sure you use the [XmlArray] attribute if in doubt.

[Serializable]
public class A
{
    [XmlArray]
    public List<string> strings;
}

This works with both Serialize() and Deserialize().

  • Does this work for an icollection? – Kala J Apr 24 '14 at 20:39
16

I think I have found a better way. You don't have to put attributes into your classes. I've made two methods for serialization and deserialization which take generic list as parameter.

Take a look (it works for me):

private void SerializeParams<T>(XDocument doc, List<T> paramList)
    {
        System.Xml.Serialization.XmlSerializer serializer = new System.Xml.Serialization.XmlSerializer(paramList.GetType());

        System.Xml.XmlWriter writer = doc.CreateWriter();

        serializer.Serialize(writer, paramList);

        writer.Close();           
    }

private List<T> DeserializeParams<T>(XDocument doc)
    {
        System.Xml.Serialization.XmlSerializer serializer = new System.Xml.Serialization.XmlSerializer(typeof(List<T>));

        System.Xml.XmlReader reader = doc.CreateReader();

        List<T> result = (List<T>)serializer.Deserialize(reader);
        reader.Close();

        return result;
    }

So you can serialize whatever list you want! You don't need to specify the list type every time.

        List<AssemblyBO> list = new List<AssemblyBO>();
        list.Add(new AssemblyBO());
        list.Add(new AssemblyBO() { DisplayName = "Try", Identifier = "243242" });
        XDocument doc = new XDocument();
        SerializeParams<T>(doc, list);
        List<AssemblyBO> newList = DeserializeParams<AssemblyBO>(doc);
  • 3
    Thanks for actually answering the question. I would add that for List<MyClass> the document element should be named ArrayOfMyClass. – Max Toro May 17 '12 at 3:50
7

Yes, it does deserialize to List<>. No need to keep it in an array and wrap/encapsulate it in a list.

public class UserHolder
{
    private List<User> users = null;

    public UserHolder()
    {
    }

    [XmlElement("user")]
    public List<User> Users
    {
        get { return users; }
        set { users = value; }
    }
}

Deserializing code,

XmlSerializer xs = new XmlSerializer(typeof(UserHolder));
UserHolder uh = (UserHolder)xs.Deserialize(new StringReader(str));
5

Not sure about List<T> but Arrays are certainly do-able. And a little bit of magic makes it really easy to get to a List again.

public class UserHolder {
   [XmlElement("list")]
   public User[] Users { get; set; }

   [XmlIgnore]
   public List<User> UserList { get { return new List<User>(Users); } }
}
  • 2
    Is it possible to do without the "holder" class? – Daniel Schaffer Mar 3 '09 at 20:53
  • @Daniel, AFAIK, no. You need to serialize and deserialize into some concrete object type. I do not believe that XML serialization natively supports collection classes as the start of a serialization. I do not 100% know that though. – JaredPar Mar 3 '09 at 20:55
  • [XmlElement("list")] should be [XmlArray("list")] instead. That is the only way Deserialization worked for me in .NET 4.5 – eduardobr Mar 11 '16 at 15:59
2

How about

XmlSerializer xs = new XmlSerializer(typeof(user[]));
using (Stream ins = File.Open(@"c:\some.xml", FileMode.Open))
foreach (user o in (user[])xs.Deserialize(ins))
   userList.Add(o);    

Not particularly fancy but it should work.

  • 2
    Welcome to stackoverflow! It's always better to provide a short description for a sample code to improve the post accuracy :) – Picrofo Software Oct 26 '12 at 5:39

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