1

i have a RESTful WCF service and one of its methods use an Object as parameter

[WebInvoke(UriTemplate = "save", Method = "POST", RequestFormat = WebMessageFormat.Xml, ResponseFormat= WebMessageFormat.Xml), OperationContract]
        public SampleItem Create(SampleItem instance)
        {
            return new SampleItem() { Id = 1, StringValue = "saved" };
            // TODO: Add the new instance of SampleItem to the collection
            //throw new NotImplementedException();
        }

I am trying to call this method from my eclipse android project. i am using these lines of codes

DefaultHttpClient httpClient = new DefaultHttpClient();
HttpPost post=new HttpPost("http://10.0.2.2:2768/Service1.svc/save");
ArrayList<NameValuePair> nvp= new ArrayList<NameValuePair>();

nvp.add(new BasicNameValuePair("Id", "1"));
nvp.add(new BasicNameValuePair("StringValue", "yolo"));

post.setEntity(new UrlEncodedFormEntity(nvp));
HttpResponse httpResponse = httpClient.execute(post);
HttpEntity httpEntity = httpResponse.getEntity();
String xml = EntityUtils.toString(httpEntity);

Every time i get this error Method not allowed. in the XML that is returned by the service method.

i have tried invoking it from the browser, but encountered the same error there.

please tell me what i am doing wrong and what i can do instead.

thanks in advance to anyone who can help.

note: other methods which do not use object as parameter are working fine.

EDIT: tried Fiddler2 with success. but stalled again.

i have tried invoking the method SampleItem Create(SampleItem instance) with the url http://localhost:2768/Service1.svc/save and it works. the method returns the object in XML format.

in fiddler i added the request body as <SampleItem xmlns="http://schemas.datacontract.org/2004/07/WcfRestService1" xmlns:i="http://www.w3.org/2001/XMLSchema-instance"><Id>1</Id><StringValue>saved</StringValue></SampleItem>

but the problem is that i can not find any way to add this xml string to the HttpPost or HttpRequest as the requestbody eclipse android project.

note: passing the xml string as Header or UrlEncodedFormEntity did not work.

0

First, you should get the Web Service method working from the browser - I recommend using Fiddler2 - its easier to construct the request body with your object and also to set the request headers when doing a post. It will show you the response so should help with debugging. As for your code, I'm doing a POST to a WCF service and instead of doing

post.setEntity(new UrlEncodedFormEntity(nvp));

I'm simply doing:

HttpPost request = new HttpPost(url);

// Add headers.
for(NameValuePair h : headers)
{
     request.addHeader(h.getName(), h.getValue());
}

(I am using JSONObjects and I have RequestFormat = WebMessageFormat.Json in my WebInvoke parameters.

Also, check your using the correct UriTemplate name in your url as they are case sensitive.

  • that was really helpful thanks, but i wanted to use XML to pass objects from and to the WCF service. could you help with that or any suggestions on, which to use, JSON or XML. – Fahim Uddin Ahmed Khan Jun 3 '12 at 3:28
  • i have tried fiddler, but still stuck. please if you would see my edit and share. – Fahim Uddin Ahmed Khan Jun 3 '12 at 8:41
2

finally i have succeeded to send a json object over to my WCF Service here's my code

URI uri = new URI("http://esimsol.com/droidservice/pigeonlibrary.service1.svc/save");

JSONObject jo1 = new JSONObject();
jo1.put("Id", "4");
jo1.put("StringValue", "yollo");

HttpURLConnection conn = (HttpURLConnection) uri.toURL().openConnection();
conn.setRequestProperty("Content-Type","application/json; charset=utf-8");
conn.setRequestProperty("Accept", "application/json");
conn.setRequestProperty("User-Agent", "Pigeon");
conn.setChunkedStreamingMode(0);
conn.setDoInput(true);
conn.setDoOutput(true);
conn.setRequestMethod("POST");
conn.connect();

DataOutputStream out = new DataOutputStream(conn.getOutputStream());
out.write(jo1.toString().getBytes());
out.flush();

int code = conn.getResponseCode();
String message = conn.getResponseMessage();

InputStream in = conn.getInputStream();
StringBuffer sb = new StringBuffer();
String reply;

try {
int chr;
while ((chr = in.read()) != -1) {
sb.append((char) chr);
}
reply = sb.toString();
} finally {
in.close();
}

SampleItem SI = new SampleItem();
SI=new Gson().fromJson(reply, SampleItem.class);

Toast.makeText(getApplicationContext(), SI.getStringValue(),Toast.LENGTH_LONG).show();

conn.disconnect();

thanks to StackOverFlow. i had to combine a number of code snippets to achieve this.

0

To call that WCF service you must build valid SOAP request and post it. It is better to use some SOAP protocol stack on Android - for example kSoap2.

Here is example of using kSoap2 to call WCF service. just add KSOAP2 lib in your project.for how we add KSOAP2 in Android project see this post

  • hi, i actually tried ksoap2. but it didnt do me any good. so i switched to REST. please if you would see my edit and share. – Fahim Uddin Ahmed Khan Jun 3 '12 at 8:43

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