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I am trying to convert XML to List

<School>
  <Student>
    <Id>2</Id>
    <Name>dummy</Name>
    <Section>12</Section>
  </Student>
<Student>
    <Id>3</Id>
    <Name>dummy</Name>
    <Section>11</Section>
  </Student>
</School>

I tried few things using LINQ and am not so clear on proceeding.

dox.Descendants("Student").Select(d=>d.Value).ToList();

Am getting count 2 but values are like 2dummy12 3dummy11

Is it possible to convert the above XML to a generic List of type Student which has Id,Name and Section Properties ?

What is the best way I can implement this ?

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2  
I think this article would be useful Convert XML to Object using LINQ –  Maryam Arshi Apr 30 '13 at 10:26
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3 Answers

up vote 4 down vote accepted

You can create an anonymous type

var studentLst=dox.Descendants("Student").Select(d=>
new{
    id=d.Element("Id").Value,
    Name=d.Element("Name").Value,
    Section=d.Element("Section").Value
   }).ToList();

This creates a list of anonymous type..


If you want to create a list of Student type

class Student{public int id;public string name,string section}

List<Student> studentLst=dox.Descendants("Student").Select(d=>
new Student{
    id=d.Element("Id").Value,
    name=d.Element("Name").Value,
    section=d.Element("Section").Value
   }).ToList();
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That works perfectly.How do i Convert that to List of Students? –  user2067567 Apr 30 '13 at 10:33
    
@user2067567 check out the edit –  Anirudha Apr 30 '13 at 10:44
    
Thanks @Anirudh –  user2067567 Apr 30 '13 at 10:48
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I see that you have accepted an answer. But I just want to show another way which I like. First you will need classes as below:

public class Student
{
    [XmlElement("Id")]
    public int StudentID { get; set; }

    [XmlElement("Name")]
    public string StudentName { get; set; }

    [XmlElement("Section")]
    public int Section { get; set; }
}

[XmlRoot("School")]
public class School
{
    [XmlElement("Student", typeof(Student))]
    public List<Student> StudentList { get; set; }
}

Then you can deserialize this xml:

    string path = //path to xml file

    using (StreamReader reader = new StreamReader(path))
    {
        XmlSerializer serializer = new XmlSerializer(typeof(School));
        School school = (School)serializer.Deserialize(reader);
    }

Hope it will be helpful.

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var students = from student in dox.Descendants("Student")
           select new
            {
                id=d.Element("Id").Value,
                Name=d.Element("Name").Value,
                Section=d.Element("Section").Value
            }).ToList();

or you can create a class call Student with id, name and section as properties and do:

var students = from student in dox.Descendants("Student")
           select new Student
            {
                id=d.Element("Id").Value,
                Name=d.Element("Name").Value,
                Section=d.Element("Section").Value
            }).ToList();
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