Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

Has been using Service Reference without any success:

Web service return only XML

Now I am using the raw SOAP message to do it:

XmlDocument doc = new XmlDocument();

                // create the request to your URL
                Uri wsHost = new Uri("");
                HttpWebRequest request = (HttpWebRequest) WebRequest.Create(wsHost);

                // add the headers
                // the SOAPACtion determines what action the web service should use
                request.Headers.Add("SOAPAction", "act");

                // set the request type
                request.ContentType = "text/xml;charset=\"utf-8\"";
                request.Accept = "text/xml";
                request.Method = "POST";

                // add our body to the request
                Stream stream = request.GetRequestStream();

                // get the response back
                using( HttpWebResponse response = (HttpWebResponse)request.GetResponse() )
                    Stream dataStream = response.GetResponseStream();
                    StreamReader dataReader = new StreamReader(dataStream); 

                    // Use Linq to read the xml response
                    using (XmlReader reader = XmlReader.Create(dataStream))

The post is correct, but response always give me text/plain empty result, the reponse header:

Headers = {Keep-Alive: timeout=5, max=100
Connection: Keep-Alive
Transfer-Encoding: chunked
Content-Type: text/plain
Date: Thu, 06 Sep 2012 15:59:28 GMT


The SOAP message is, act is the function:

<soapenv:Envelope xmlns:soapenv="" xmlns:web="http://webService">

I use SoapUI, below is the raw request from SoapUI, it return a xml result:

Accept-Encoding: gzip,deflate
Content-Type: text/xml;charset=UTF-8
SOAPAction: ""
Content-Length: 516
Connection: Keep-Alive
User-Agent: Apache-HttpClient/4.1.1 (java 1.5)

Thank you.

share|improve this question
What is the output on the raw tag? – CSharpened Sep 6 '12 at 15:34
empty content-type text/plain. – Kev Fixx Sep 6 '12 at 15:48

2 Answers 2

SOAP webservices require action/method to be specified (and NOT empty). If you don't know which action you want you can look at webservice WSDL by invoking the webservice with queryString "?WSDL". I.e.

share|improve this answer
The the SOAPAction just the function name? – Kev Fixx Sep 6 '12 at 15:47
I put in the SOAPAction, still no result. – Kev Fixx Sep 6 '12 at 15:52
But, how is the webservice meant to know which one (of possibly many) of it's methods you are trying to call? That is the reason why you have to invoke the webservice with parameters that it will recognise. SOAPAction should contain the actual webservice method you are trying to call. – Germann Arlington Sep 6 '12 at 15:56
I added the function no result, the thing is the SoapUI is posting SOAPAction: "", an empty SOAPACTION, still it return a result. – Kev Fixx Sep 6 '12 at 16:00
Are you using correct URL? Are you using correct method? Who wrote the webservice? Is your webservice correctly and successfully deployed? Try top access the actual URL of the webservice with "?WSDL" querystring, what do you get? – Germann Arlington Sep 6 '12 at 16:06

You must specify an action in both the request and also the service interface. You can set the action value on the interface member using the attributes shown below and then in the request using the method you have used but by specifying the action name you used in the contract:

The attributes on the interface member

[OperationContract Name="YourActionName"]
[WebInvoke (Method = "POST", UriTemplate = "YourActionName")]
Message YourServiceFunction();

One method of specifying the action on the message

Message inputMessage = Message.CreateMessage (MessageVersion.Soap, "YourActionName", reader);
share|improve this answer

Your Answer


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.