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I am using Linq to XML to save a List into XML string.

The xml string I am trying to get:

<people>
<name>xxx</name>
<age>23</age>
</people>
<people>
<name>yyy</name>
<age>25</age>
</people>

C# code:

List<Peoples> peopleList = new List<Peoples>(); 
peopleList.Add(new Peoples() { Name = "xxx", Age = 23 });
peopleList.Add(new Peoples() { Name = "yyy", Age = 25 });
var people (from item in peopleList
select new XElement("people",
                                new XAttribute("name", item.Name),
                                new XAttribute("age", item.Age)
                            ));

How can I convert var people into XML string?

Thank you.


Edited :

What I can think of is to add a root element into the xml, and replace and with empty string.


Jignesh Thakker solution works:

string str = people.Select(x => x.ToString()).Aggregate(String.Concat); 
share|improve this question

4 Answers 4

up vote 3 down vote accepted

There are two solution by which you can get XML string.

Solution 1: To Get XMl string you need put XmlElement in XDocument object. Try with,

  List<Peoples> peopleList = new List<Peoples>(); 
  peopleList.Add(new Peoples() { Name = "xxx", Age = 23 });
  peopleList.Add(new Peoples() { Name = "yyy", Age = 25 });
  var people =  (from item in peopleList
  select new XElement("people",
                            new XElement("name", item.Name),
                            new XElement("age", item.Age)
                        ));

  XElement root = new XElement("Peoples");
  root.Add(people);
  XDocument xDoc = new XDocument(
                         new XDeclaration("1.0", "utf-8", "yes"),
                         root);
  string str = xDoc.ToString();

you need root element to get Xml string.

OUTPUT:

<Peoples>
  <people>
    <name>xxx</name>
    <age>23</age>
  </people>
  <people>
    <name>yyy</name>
    <age>25</age>
  </people>
</Peoples> 

Here Name & Age consider as XElement. As your code in question you mentioned XAttribute. Try with below code if you want to consider Name & age as XAttribute.

   List<Peoples> peopleList = new List<Peoples>(); 
   peopleList.Add(new Peoples() { Name = "xxx", Age = 23 });
   peopleList.Add(new Peoples() { Name = "yyy", Age = 25 });
   var people =  (from item in peopleList
                           select new XElement("people",
                            new XAttribute("name", item.Name),
                            new XAttribute("age", item.Age)
                        ));

    XElement root = new XElement("Peoples");
    root.Add(people);
    XDocument xDoc = new XDocument(
                         new XDeclaration("1.0", "utf-8", "yes"),
                         root);


    string str = xDoc.ToString(); 

OUTPUT:

<Peoples>
  <people name="xxx" age="23" />
  <people name="yyy" age="25" />
</Peoples>

Solution 2: Try with below if you want Xml string from List<XElement>:

string str = people.Select(x => x.ToString()).Aggregate(String.Concat);

If XElement used for name & age then OUTPUT:

  <people>
    <name>xxx</name>
    <age>23</age>
  </people>
  <people>
    <name>yyy</name>
    <age>25</age>
  </people>

IF XAttribute used for name & age then OUTPUT:

  <people name="xxx" age="23" />
  <people name="yyy" age="25" />

Hope It should work. Solution 2 is most appropriate for what you need.

share|improve this answer

You want the "name" and "age" to be elements, not attributes. Since you have no top element in your desired output. It is the sequential output of two elements.

void Main()
{
    List<Peoples> peopleList = new List<Peoples>(); 
    peopleList.Add(new Peoples() { Name = "xxx", Age = 23 });
    peopleList.Add(new Peoples() { Name = "yyy", Age = 25 });
    var people =(from item in peopleList
    select new XElement("people",
                                    new XElement("name", item.Name),
                                    new XElement("age", item.Age)
                                ));
    Console.WriteLine (people.First());
    Console.WriteLine (people.Last());
}

class Peoples
{
    public string Name {get;set;}
    public int Age {get;set;}
}

EDIT#1: I want to emphasize that your desired output is not a single xml output. If I add a root object, you get pretty close. Try this:

XElement root = new XElement("root");
foreach (var item in peopleList)
{
    root.Add(new XElement("people",
                                new XElement("name", item.Name),
                                new XElement("age", item.Age)
                            ));         
}
Console.WriteLine (root.ToString());
share|improve this answer
    
How do I convert var people into xml string? –  Kev Fixx Sep 19 '12 at 3:52
    
Have you tried running it? It is the string representation of an XElement type. Use ToString() if you want to be explicit. –  Tormod Sep 19 '12 at 4:34
    
It gives me System.Linq.Enumerable+WhereSelectListIterator`2[Model.SalesItem,System.Xml.Linq‌​.XElement], but trxTtems.First() will give me a string. –  Kev Fixx Sep 19 '12 at 5:51
1  
What if I have more then two items? –  Kev Fixx Sep 19 '12 at 6:09
    
Well, you can foreach over it. It is important that you understand that your desired output is not a single XML output because you don't have a single root object. See edit#1 –  Tormod Sep 19 '12 at 11:37
class Program
{
    static void Main(string[] args)
    {
        List<Person> peopleList = new List<Person>(); 
        peopleList.Add(new Person() { Name = "xxx", Age = 23 });
        peopleList.Add(new Person() { Name = "yyy", Age = 25 });

        XElement xmlDoc = new XElement("people", from p in peopleList
                                                 select new XElement("person",
                                                                     new XElement("name", p.Name),
                                                                     new XElement("age", p.Age)));

        Console.WriteLine(xmlDoc.ToString());
        Console.ReadKey();
    }
}

public class Person
{
    public string Name { get; set; }
    public int Age { get; set; }
}

Will produce:

<people>
  <person>
    <name>xxx</name>
    <age>23</age>
  </person>
  <person>
    <name>yyy</name>
    <age>25</age>
  </person>
</people>
share|improve this answer

Maybe this will give you what you need

List<Peoples> peopleList = new List<Peoples>();
            peopleList.Add(new Peoples() { Name = "xxx", Age = 23 });
            peopleList.Add(new Peoples() { Name = "yyy", Age = 25 });

            var people = new XElement("Peoples", peopleList.Select(p => 
                                                             new XElement("people",
                                                                          new XAttribute("name", p.Name),
                                                                          new XAttribute("age", p.Age)
                                                                 ))).ToString();

This would produce the following XML

<Peoples>
  <people name="xxx" age="23" />
  <people name="yyy" age="25" />
</Peoples>
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