Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to deserialize the following xml using RestSharp, but I always get a list of null elements. I am new to REST based services and need some expert help! =)

Solution Found: I figured it out. You have to explicitly tell RestSharp what kind of data is being deserialized:

request.OnBeforeDeserialization = resp => {
                resp.ContentType = "application/json";
            };

Full XML: http://autocomplete.wunderground.com/aq?query=San%20F&format=xml Some of the XML is below:

<RESULTS>
<name>San Francisco, California</name>
<type>city</type>
<c>US</c>
<zmw>94101.1.99999</zmw>
<tz>America/Los_Angeles</tz>
<tzs>PDT</tzs>
<l>/q/zmw:94101.1.99999</l>
</RESULTS>

Here is my XMLResults class:

public class XMLResults
{
    public List<name> names {get; set;}
}
public class name 
{
    public string city {get; set;}
}

And here is my getWeather method:

public void getWeather(string query)
{
    var client = new RestClient ();
    var request = new RestRequest(Method.GET);
    client.BaseUrl = "http://autocomplete.wunderground.com";
    request.Resource = "aq";
    request.AddParameter ("query", query);
    request.AddParameter ("format", "xml");
    request.RequestFormat = DataFormat.Xml;
    var city = client.Execute<XMLResults>(request);
    Console.WriteLine (city.Data.names.Count); // Results in 20

}           
share|improve this question
    
We just released a new version of RestSharp (104.2). Can you try it with that and see if the problem persists? –  Haacked Sep 18 '13 at 20:55
    
I have the latest version. I am using Xamarin studio, so the component was installed using the in-built component store. When I changed the POCO to just public class RESULTS { public string name {get; set;} } I get the first name in the XML but none of the others.. –  pnavk Sep 18 '13 at 20:58

2 Answers 2

If it were me I would take a valid XML response ( like the one you posted ) and create a class from it using the xsd.exe program that comes with Visual Studio (it is VS Command Line Tool)

Generate C# class from XML

Then you can easily Serialize and Deserialize your Object.

share|improve this answer
    
I figured it out. You have to explicitly tell RestSharp what kind of data is being deserialized: request.OnBeforeDeserialization = resp => { resp.ContentType = "application/json"; }; –  pnavk Sep 20 '13 at 14:53
up vote 0 down vote accepted

I had to explicitly tell RestSharp what kind of data is being deserialized: request.OnBeforeDeserialization = resp => { resp.ContentType = "application/json";};

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.