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I created a web service (REST) in C#. Now I want that when someone uses it, it should return JSON or XML as per Header. I found a very good tutorial here. I followed it but I dont know where it says set both the HTTP Accept and Content-Type headers to "application/xml", I am calling it in this way http://localhost:38477/social/name. I can answer to any question if my question is not very clear to you Thanks THis is my code

[WebInvoke(UriTemplate = "{Name}", Method = "POST", BodyStyle = WebMessageBodyStyle.Bare, RequestFormat = WebMessageFormat.Xml, ResponseFormat = WebMessageFormat.Xml)]
        public MyclassData Get(string Name)
        {
            // Code to implement
            return value;

        }
share|improve this question
1  
Are you already using the WebInvoke & WebGet attribute in your rest service, both these attributes have properties to set RequestFormat & ResponseFormat – HatSoft Jul 8 '12 at 17:32
    
@HatSoft Thank you,@Misha has pointed out the same thing but its not working – user1391118 Jul 8 '12 at 17:39
    
Please copy/paste the code here so we can help you further – HatSoft Jul 8 '12 at 17:41
    
@HatSoft I have updated – user1391118 Jul 8 '12 at 17:44
up vote 4 down vote accepted

What framework are you using (Looks like the older WCf Web Api) to build your RESTful service? I would highly recommend using Microsofts new MVC4 Web API. It is really starting to mature and greatly simplifies building RESTful services. It is what is going to be supported in the future where the WCF Web API is about to be discontinued.

You simply return your ModelClass as a return type and it will automatically serialize it into XML or JSON depending on the requests accept header. You avoid having writing duplicate code and your service will support a wide range of clients.

public class TwitterController : ApiController
{
     DataScrapperApi api = new DataScrapperApi();
     TwitterAndKloutData data = api.GetTwitterAndKloutData(screenName);
     return data;
}

public class TwitterAndKloutData
{
   // implement properties here
}

Links

You can get MVC4 Web Api by downloading just MVC4 2012 RC or you can download the whole Visual Studio 2012 RC.

MVC 4: http://www.asp.net/mvc/mvc4

VS 2012: http://www.microsoft.com/visualstudio/11/en-us/downloads


For the original wcf web api give this a shot. Examine the accept header and generate your response according to its value.

var context = WebOperationContext.Current
string accept = context.IncomingRequest.Accept;
System.ServiceModel.Chanells.Message message = null;

if (accept == "application/json")
   message = context.CreateJsonResponse<TwitterAndCloutData>(data);
else if (accept == "text/xml")
   message = context.CreateXmlResponse<TwitterAndCloutData>(data);

return message;

You would set the accept header on whatever client is initiated the request. This will differ depending on what type of client you are using to send the request but any http client will have a way to add headers.

WebClient client = new WebClient();
client.Headers.Add("accept", "text/xml");
client.DownloadString("domain.com/service");

To access the response headers you would use

WebOperationContext.Current.OutgoingResponse.ContentType = "text/xml";

Additional resources: http://dotnet.dzone.com/articles/wcf-rest-xml-json-or-both

share|improve this answer
    
I am using .NET 4.0.. – user1391118 Jul 8 '12 at 17:47
    
I respect your opinion,but I dont want to change my whole Service just because of this error.I mean I want to learn and know the answer of my question,surely next time I will be using MVC4..+1 for new Idea:) – user1391118 Jul 8 '12 at 17:53
1  
@despertar - WCF infrastructure will automatically handle the request/response serialization/deserialization to correct format (json or xml) based on the Http headers. You do not need to handle that specifically (with any code) unless you are doing some additional work, which I don't think is what the question is asked for. – muruge Jul 8 '12 at 18:14
    
I write this in my function and now the return type doesn't matches.I don't want to change the return type... – user1391118 Jul 8 '12 at 18:17
    
@muruge You are very right..but the things is how to change the http header,in global.asax? – user1391118 Jul 8 '12 at 18:17

You have specified the RequestFormat = WebMessageFormat.Xml, ResponseFormat = WebMessageFormat.Xml in your WebInvoke attribute which restricts the format of both Request and Response to Xml. Remove the RequestFormat and ResponseFormat properties and let the framework work on it based on Http headers. Content-type header specifies the request body type and Accept header specifies the response body type.

Edit:

This is how you would send your requests using fiddler.

enter image description here

You could use Microsoft.Http and Microsoft.Http.Extensions dlls that comes with the REST starter kit for writing client side code. Below is a sample.

        var client = new HttpClient("http://localhost:38477/social");
        client.DefaultHeaders.Accept.AddString("application/xml");
        client.DefaultHeaders.ContentType = "application/xml";
        HttpResponseMessage responseMessage = client.Get("twitter_name");
        var deserializedContent = responseMessage.Content.ReadAsDataContract<YourTypeHere>();
share|improve this answer
    
The things is where should we write this i-e Content-type and header? – user1391118 Jul 8 '12 at 18:15
    
The headers should be set in the client side when you send your requests. I will edit my answer to show how you could achieve this. – muruge Jul 8 '12 at 18:20
    
Do you think people will use fiddler to see the output? Moreoever how i can see reponse in fiddler? – user1391118 Jul 8 '12 at 18:38
1  
Fiddler is a great tool for debugging web services. Personally, I think it is one of the must have tools for developers working on the middle tier components of an application. To answer your question - You can go to the Inspectors tab to see the response. – muruge Jul 8 '12 at 18:43
    
That also didn't worked out – user1391118 Jul 8 '12 at 18:58

Can you create two overloads for your method like this:

    [WebInvoke(UriTemplate = "dostuff", Method = "POST", BodyStyle = WebMessageBodyStyle.Bare, RequestFormat = WebMessageFormat.Json, ResponseFormat = WebMessageFormat.Json)]
    public StuffResponse DoStuff(RequestStuff requestStuff)


    [WebInvoke(UriTemplate = "dostuff", Method = "POST", BodyStyle = WebMessageBodyStyle.Bare, RequestFormat = WebMessageFormat.Xml, ResponseFormat = WebMessageFormat.Xml)]
    public StuffResponse DoStuff(RequestStuff requestStuff)
share|improve this answer
    
"Method not allowed. Please see the service help page for constructing valid requests to the service." – user1391118 Jul 8 '12 at 17:38
    
Ah sorry you need different parameters in the 2 methods for them to work. – Misha Jul 8 '12 at 17:46
    
I just implemented a single func,there is no parameter problem I think :) – user1391118 Jul 8 '12 at 17:48

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