3

I have a typical WCF REST service in C# which accepts JSON input and returns a JSON output:

[ServiceContract]
public class WCFService
{
    [WebInvoke(Method = "POST", UriTemplate = "register", ResponseFormat = WebMessageFormat.Json)]
    public BasicResponse RegisterNewUser(UserDTO newUser)
    {
        return new BasicResponse()
        { status = "ERR_USER_NAME" };
    }
}

public class BasicResponse
{
    public string status { get; set; }
}

public class UserDTO
{
    public string username { get; set; }
    public string authCode { get; set; }
} 

This works as expected but I want to return different objects in case of normal execution and in case of error. I created a base response class and few inheritors. Now the WCF JSON serializer crashes and produces "400 Bad Request":

[ServiceContract]
public class WCFService
{
    [WebInvoke(Method = "POST", UriTemplate = "register", 
        ResponseFormat = WebMessageFormat.Json)]
    public BasicResponse RegisterNewUser(UserDTO newUser)
    {
        return new ErrorResponse()
        {
            status = "ERR_USER_NAME",
            errorMsg = "Invalid user name."
        };
    }
}

public class BasicResponse
{
    public string status { get; set; }
}

public class ErrorResponse : BasicResponse
{
    public string errorMsg { get; set; }
}

public class UserDTO
{
    public string username { get; set; }
    public string authCode { get; set; }
}

I tried to apply the [KnownType(typeof(ErrorResponse))] and [ServiceKnownType(typeof(ErrorResponse))] attributes without any success. Seems like a bug in the DataContractJsonSerializer which states it supports polymorphism.

My WCF REST service uses the WebServiceHostFactory:

<%@ ServiceHost Language="C#" Debug="true" 
    Service="WCFService" 
    CodeBehind="CryptoCharService.svc.cs"
    Factory="System.ServiceModel.Activation.WebServiceHostFactory" %>

In my Web.config I have standard HTTP endpoint:

<system.serviceModel>
  <standardEndpoints>
    <webHttpEndpoint>
      <standardEndpoint helpEnabled="true" defaultOutgoingResponseFormat="Json" />
    </webHttpEndpoint>
  </standardEndpoints>
</system.serviceModel>

Do you think this is fixable? I know a workaround (to return string and serialize the output manually) but why this does not work?

1

I found a way to partially overcome the described problem. When I need to return a normal value (e.g. BasicResponse), I just return it (my service returns BasicResponse object). When I need to return an error response, I return it as WebFaultException which is also serialized as JSON and is sent as HTTP response to the WCF service:

throw new WebFaultException<ErrorResponse>(
    new ErrorResponse() { errorMsg = "Error occured!" },
    HttpStatusCode.NotFound);

Now I can send the expected result as a normal method return value and any exceptional result in case of error through this WebFaultException.

1

ServiceKnownTypeAttribute works for me. Try this one:

[ServiceKnownType(typeof(ErrorResponse))] 
public BasicResponse RegisterNewUser(UserDTO newUser)
{
    return new ErrorResponse()
    {
        status = "ERR_USER_NAME",
        errorMsg = "Invalid user name."
    };
}
0

This should work correctly:

[DataContract]
[KnownType(typeof(ErrorResponse)]
public class BasicResponse
{
    [DataMember]
    public string status { get; set; }
}

[DataContract]
public class ErrorResponse : BasicResponse
{
    [DataMember]
    public string errorMsg { get; set; }
}
  • 1
    Thanks for these suggestions. I known that by concept in WCF I should use [DataContract] and [DataMember], but after many hours of experiments I found that the DataContractJsonSerializer completely ignores these attributes so I removed them from the code. Your code does not help. The serializer still crashes and still the result is "400 Bad Request". Do you know how can I see the exception thrown by the serializer? – Svetlin Nakov Dec 19 '11 at 22:35

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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