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URL is : http://xx.xx.xx.xx:9080/myprocess?action=start&params={\"inputName\":\"Test\"}

In the above URL my JSON String is {\"inputName\":\"omsai\"}

I am calling the Apache Wink Rest(POST) call in the following way, but it is not working. I am getting java.net.URISyntaxException .

 secHandler.setUserName(userName);
 secHandler.setPassword(passWord);
 secHandler.setSSLRequired(false);

 ClientConfig clientConfig = new ClientConfig();
 clientConfig.handlers(secHandler);
 RestClient restClient = new RestClient(clientConfig);
 Resource resource = restClient.resource("http://xx.xx.xx.xx:9080/myprocess?action=start&params={\"inputName\":\"Test\"}");
 String response  response = resource.contentType(MediaType.APPLICATION_FORM_URLENCODED_TYPE).accept(MediaType.APPLICATION_JSON).post(String.class,"");
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it worked ,,here is the code –  prem chander jonnala Jan 10 '13 at 19:21

1 Answer 1

Here is the code 


secHandler.setUserName(userName);
 secHandler.setPassword(passWord);
 secHandler.setSSLRequired(false);

 ClientConfig clientConfig = new ClientConfig();
 clientConfig.handlers(secHandler);
 RestClient restClient = new RestClient(clientConfig);
 Resource resource = restClient.resource("http://xx.xx.xx.xx:9080/myprocess?action=start
String jsonString ="params={\"inputName\":\"Test\"}")";
 String response  response = resource.contentType(MediaType.APPLICATION_FORM_URLENCODED_TYPE).accept(MediaType.APPLICATION_JSON).post(String.class,jsonString);
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