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I want to read a xml file and load as list and look for the value during the form load. How can i read the file and get it as a list??? The Xml file:

<?xml version="1.0" encoding="utf-8"?>
<Types>
<Type>t1-p2</Type>
<Type>t1-k1</Type>
<Type>t2-s2</Type>
</Types>

Class File:

class Testtypes
    {
        public string Type;

        public static List<Testtypes> getTypes()
        {
            XDocument doc = XDocument.Parse("test.xml");
            var q = doc.Descendants("Type").ToList();
            return getTypes.();
        }
    }
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Thats is the class i have created.. –  linguini Nov 9 '12 at 13:51
    
This question/answer is similar enough to give you an idea of where to go, I think: stackoverflow.com/questions/13280719/… –  Patrick Quirk Nov 9 '12 at 13:53

5 Answers 5

up vote 4 down vote accepted

Firstly, I would not have a public field. At least use a property. I'd also rename the class to something a little more meaningful. But you can change your code to:

class Testtypes
{
    public string Type { get; private set; }

    public static List<Testtypes> FromXml(string filename)
    {
        return XDocument.Load(filename)
                        .Root.Elements("Type")
                        .Select(x => new Testtypes { Type = x.Value })
                        .ToList();
    }
}

Or given that you've only got a string, you could avoid creating your own type:

public static List<string> FromXml(string filename)
{
    return XDocument.Load(filename)
                    .Root.Elements("Type")
                    .Select(x => x.Value)
                    .ToList();
}
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I need a method which should return all the values, so that I can get the value compare it in te GUI. How can i get the values of "Type"?? –  linguini Nov 9 '12 at 13:59
    
@linguini: Um, the code I've given does return all the values. You can fetch the Type property of any of the returned values. –  Jon Skeet Nov 9 '12 at 14:02
    
Jon Skeet: var x = Testtypes.FromXml(). , this way i'm trying to get the value in gui..but it's not workng. –  linguini Nov 9 '12 at 14:04
    
@linguini: "It's not working" is never a good enough description. I suspect it's because you're not passing in the filename - I extracted it from the method, including it as a parameter instead. It's not a good idea to hard code it in the parsing method. –  Jon Skeet Nov 9 '12 at 14:07
    
@linguini: Well yes, that will fail because you're not passing in the filename. Did the compiler error not make that clear? –  Jon Skeet Nov 9 '12 at 15:11

Parse method receives a ready string where you needed first to read the file. Use the Load method to read the file and it comes ready to use the Descendants method as follow:

public static IEnumerable<string> GetTypes()
{
    XDocument doc = XDocument.Load("../../test.xml");
    var xmlElementList = doc.Descendants("Type");
    var stringList = xmlElementList.Select(element => element.Value);

    return stringList;
}

Good luck

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            private static List<TestType> testType;

            public static List<TestType> TestTypes
            {
                get
                {
                    if (testType== null)
                    {
                        var fileName = GetFilePath("TestTypes.xml");

                        testType= DeseriaizeXml<List<TestType>>(fileName);
                    }

                    return testType;
                }
            }



  private static T DeseriaizeXml<T>(String fileName) where T : class
            {
                using (var stream = File.OpenRead(fileName))
                {
                    return DeseriaizeXml<T>(stream);
                }
            }

            private static T DeseriaizeXml<T>(Stream stream) where T : class
            {
                using (
                    var xmlReader = XmlDictionaryReader.CreateTextReader(stream, Encoding.UTF8,
                                                                         new XmlDictionaryReaderQuotas(), null))
                {
                    var xmlSer = new XmlSerializer(typeof (T));

                    return xmlSer.Deserialize(xmlReader) as T;
                }
            }

     private static String GetFilePath(String fileName)
        {
            var asmUri = new Uri(Assembly.GetExecutingAssembly().CodeBase);

            if (asmUri.IsFile)
            {
                var asmFolder = Directory.GetParent(asmUri.LocalPath);

                return Path.Combine(asmFolder.FullName, fileName);
            }

            throw new Exception();
        }
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3  
That code looks unnecessarily complicated to me... –  Jon Skeet Nov 9 '12 at 14:08
    
maybe john, but isn't it beautiful? D:D:D: and also, you must have the exact reflection of xml data structure in type –  m4ngl3r Nov 9 '12 at 14:14
    
So it's longwinded, complex, and inflexible? No thanks, I prefer my solution... –  Jon Skeet Nov 9 '12 at 15:11

You need to use the Load() method to load a file and then create a new Testtype for each value. Since each Type is a child of the root node, Elements() is the one you'd want instead of Descendants().

class Testtypes
{
    public string Type;

    public static List<Testtypes> getTypes()
    {
        var doc = XDocument.Load("test.xml");
        return doc.Root.Elements("Type")
                   .Select(x => new Testtypes
                   {
                       Type = x.Value
                   }
                   .ToList();
    }
}
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If my xml is such simple,I would do this

var myList=XElement.Load("data.xml")
                   .DescendantNodes()
                   .Where(N => N.NodeType == XmlNodeType.Text);
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