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HI I have been trying to call REST POST API using jersey REST Client. The API is docs is URL: METHOD: POST Header Info:- X-GWS-APP-NAME: XYZ Accept: application/json or application/xml

My Sample Jersey client code is

             Client client = Client.create();

             WebResource resource=client.resource(URL);

             resource.accept(javax.ws.rs.core.MediaType.APPLICATION_XML);
             resource.type(javax.ws.rs.core.MediaType.APPLICATION_XML);
             resource.type("charset=utf-8");
             ClientResponse response = resource.post(ClientResponse.class,myReqObj);

I have been trying this code variation since last 1 week and it is not working. Any help in this regard is highly appreciated.

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1 Answer 1

The tricky part is that the WebResource methods follows the Builder design pattern so it returns a Builder object which you need to preserve and carry on as you call further methods to set the full context of the request.

When you do resource.accept, it returns something you don't store, so it's lost when you do resource.type and therefore only your last call takes effect.

You'd typically set all the criterias in one line, but you could also save the output in a local variable.

ClientResponse response = client.resource(URL)
                                .accept(MediaType.APPLICATION_XML)
                                .type(MediaType.APPLICATION_XML)
                                .post(ClientResponse.class,myReqObj);
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2  
I think you need to remove the semicolons from the ends of the accept and type lines. –  FrontierPsycho Jan 22 at 17:12
    
abusive copy/paste. :) it's fixed now. thanks! –  TheArchitect Apr 11 at 20:41
    
You're welcome and thanks.:) –  FrontierPsycho Apr 12 at 22:17

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