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I am getting the XML data that is sent as part of SOAP request using a handler in webservice before unmarshalling of the request is done.

Node root = soapMsgContext.getMessage().getSOAPBody().getFirstChild();

Is there to trim all the elements in the node? For instance in the below case -

<Person>
  <Name> J i m </Name>
  <Details>
     <age> 1 9 </age>
     <Address>
        <firstName> J i mm y </firstName>
        <lastName> An der son </lastName>
     </Address>
  </Details>
<Person>

must be changed to

<Person>
  <Name>Jim</Name>
  <Details>
     <age>19</age>
     <Address>
        <firstName>Jimmy</firstName>
        <lastName>Anderson</lastName>
     </Address>
  </Details>
<Person>

EDIT: Webservices framework being used is JAX-RPC.

share|improve this question
    
+1 for a good question, but you might want to state which web services framework you're using? –  davidfrancis Feb 14 '12 at 12:12
    
Thanks David. I am using JAX-RPC, have edited the original post. –  Punter Vicky Feb 14 '12 at 12:16
    
I don't expect any XML library to do this. An XML parser is required to report all characters that are element content. Whitespace handling (DocumentBuilderFactory#setIgnoringElementContentWhitespace) is only relevant for whitespace between child elements. So this is handling is left to the application (which, in fact, is the only instance to know the business rules, like Jim my Dea n). –  Hauke Ingmar Schmidt Feb 14 '12 at 12:41
1  
Yes I think you need something before the web services unmarshalling. I've never used JAX-RPC so don't know exactly how to do this. Using a servlet would work but may be overkill. Maybe a JAX-RPC handler? See this link: java.boot.by/wsd-guide/ch04s07.html. Search the page for "Handlers let you access/modify SOAP request and response messages". –  davidfrancis Feb 14 '12 at 16:34
1  
Or having re-read you question - maybe you knew all that already. I think that's the way to go, really. –  davidfrancis Feb 14 '12 at 16:35

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