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I have simple schema:

<?xml version="1.0" encoding="UTF-8"?>
<xs:schema attributeFormDefault="unqualified" elementFormDefault="qualified"
           xmlns:xs="http://www.w3.org/2001/XMLSchema">
    <xs:element name="error"  type="xs:string">
    </xs:element>
</xs:schema>

I generated Java code From XML Schema using JAXB. I have only one class:

@XmlRegistry
public class ObjectFactory {

    private final static QName _Error_QNAME = new QName("", "error");

    /**
     * Create a new ObjectFactory that can be used to create new instances of schema derived classes for package: error
     * 
     */
    public ObjectFactory() {
    }

    /**
     * Create an instance of {@link JAXBElement }{@code <}{@link String }{@code >}}
     * 
     */
    @XmlElementDecl(namespace = "", name = "error")
    public JAXBElement<String> createError(String value) {
        return new JAXBElement<String>(_Error_QNAME, String.class, null, value);
    }

}

I usually use this code to parse XML:

 JAXBContext context = JAXBContext.newInstance(RootGenerateClass.class);
 Unmarshaller unmarshaller = context.createUnmarshaller();
 RootGenerateClass response = (RootGenerateClass) unmarshaller.unmarshal(streamWrapper.getStream());

What should I do in this case(i don't have any rootGenerateClass)? I try this:

JAXBContext context = JAXBContext.newInstance(String.class);
Unmarshaller unmarshaller = context.createUnmarshaller();
String response = (String) unmarshaller.unmarshal(streamWrapper.getStream());

of course it isn't work((

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2  
Your acceptance rate is too low. Please work on it. Better acceptance rate will have more solutions to your problem. –  Arun Kumar Oct 3 '12 at 13:11

3 Answers 3

Thanks a lot. :) i Just use wrapper for root element

<?xml version="1.0" encoding="UTF-8"?>
<xs:schema attributeFormDefault="unqualified" elementFormDefault="qualified"
           xmlns:xs="http://www.w3.org/2001/XMLSchema">
    <xs:element name="error" type="RetroErrorType"/>
    <xs:complexType name="RetroErrorType">
        <xs:simpleContent>
            <xs:extension base="xs:string">
            </xs:extension>
        </xs:simpleContent>
    </xs:complexType>
</xs:schema>

and

JAXBContext context = JAXBContext.newInstance(String.class);
Unmarshaller unmarshaller = context.createUnmarshaller();
String response = (String) unmarshaller.unmarshal(streamWrapper.getStream());

working properly

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Assuming your ObjectFactory is in the package com.example you should be able to do

JAXBContext context = JAXBContext.newInstance("com.example");
Unmarshaller unmarshaller = context.createUnmarshaller();
JAXBElement<String> responseElt = (JAXBElement<String>) unmarshaller.unmarshal(streamWrapper.getStream());
String response = responseElt.getValue();

When you give a package name to JAXBContext.newInstance it will look for an ObjectFactory class in that package.

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+1 - If you generate the model from an XML schema then you should create a JAXBContext from the package name. If you are creating the JAXBContext from classes you need to include ObjectFactory in the list of classes. I.e. JAXBContextFactory.newInstance(ObjectFactory.class); –  Blaise Doughan Oct 3 '12 at 14:58

You haven't mentioned your RootGenerateClass here. Also unmarshling means converting XML Content into JAVA Class Object, and that class should have the data members same as in your XML schema. So, in the second case unmarshling to String class object will not work.

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