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I am developing a web service, no matter what, the response should always be valid, and I mean valid as in a valid format.

That means that if the web service is expected to return an XML matching a particular XSD schema, it should ALWAYS return a valid XML document, no matter what.

The only approach that I have so far is to do something like this (at controller level)

String xmlResponse = this.loadDefaultXML();
try {
     xmlResponse = this.myCoolService.myCoolMethod();
} catch (Throwable t) {
     xmlResponse = this.loadDefaultXML(String errorMessage)
} finally {
     return xmlResponse
}

Where of course lpoadDefaultXML() will load an xml document like:

<?xml>
<result>Ouch, there was a problem</result>

And loadDefaultXML(String errorMessage) will do

<?xml>
<result>WHATEVER errorMessage contains</result>

Of course the service level takes cares of the normal exceptions, still, I feel that catching Throwable and using the try-catch-finally is the only way to ensure that no matter what, I will be in control so I can return always an XML.

Any better ideas or suggestions?

UPDATE:

I am using Spring MVC 3.2 and JAXB for the marshalling/unmarshalling of xml. This does use SOAP, also I am not using wsdl for this.

share|improve this question
1  
Yours is a good way, but the best, I believe, is to use yours framework's capabilities. Which one is it? Some will allow you to create an exception mapper class that treats Throwable (converts them into a XML message). Others will only alow you to catch "business exceptions" (that is, they won't allow you to treat Throwable or Exception), in this case, yours is the only way. –  acdcjunior May 20 '13 at 0:40
    
@acdcjunior See the update, thanks :) –  Juan Antonio Gomez Moriano May 20 '13 at 0:43
    
Is this a SOAP service, or something different? –  OldProgrammer May 20 '13 at 0:44
    
Is not SOAP, just simple xml request/responses. –  Juan Antonio Gomez Moriano May 20 '13 at 0:48

1 Answer 1

up vote 2 down vote accepted

In Spring MVC, when an exception is thrown during the handling of the request, the DispatcherServlet will consult the configured org.springframework.web.servlet.HandlerExceptionResolvers to handle the thrown exception. The resolver can then translate the exception to a view to show the user.

To use it, in short, you can either:

  • Implement the HandlerExceptionResolver interface, which is only a matter of implementing the resolveException(Exception, Handler) method and returning a ModelAndView.

Or, what I prefer:

  • You use the @ExceptionHandler method annotation within a controller to specify which method is invoked when an exception of a specific type is thrown during the execution of controller methods. For example:

    @Controller
    public class PersonController {
    
        @RequestMapping("person/{id}")
        @ResponseBody
        public Person getById(@PathVariable String id) {
            if ("007".equals(id)) {
                throw new RuntimeException("007 is a secret agent.");
            }
            return personService.getById(id);
        }
    
        @ExceptionHandler(RuntimeException.class) // this can be an array
        @ResponseBody
        public String handleRuntimeException(RuntimeException ex,
                                             HttpServletRequest request) {
            return "Oops! Something bad happened: "+ex.getMessage();
        }
    }
    

Find more info at Web MVC framework - Handling Exceptions.

share|improve this answer
    
hi nice answer ......... –  Ruju May 20 '13 at 6:16

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