Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to make two testcase using class org.springframework.ws.client.core.WebServiceTemplate .Both testcases are in different classes so I made two different beans for them.

On running the junit tests I got a error like that

Error creating bean with name 'testcases.TestAdminMethodsWebService': Unsatisfied dependency expressed through bean property 'admin': : No unique bean of type [org.springframework.ws.client.core.WebServiceTemplate] is defined: expected single matching bean but found 7: [admin, rules]; nested exception is org.springframework.beans.factory.NoSuchBeanDefinitionException: No unique bean of type [org.springframework.ws.client.core.WebServiceTemplate] is defined: expected single matching bean but found 2: [admin, rules]

My bean is like this

<oxm:jaxb2-marshaller id="marshaller_admin" contextPath="a.com.b" />
<bean id="admin" class="org.springframework.ws.client.core.WebServiceTemplate">
    <property name="marshaller" ref="marshaller_admin" />
    <property name="unmarshaller" ref="marshaller_admin" />
    <property name="defaultUri"
        value="http://dev05:8080/.." />
</bean>
<oxm:jaxb2-marshaller id="marshaller_rules" contextPath="r.com.b" />
<bean id="rules" class="org.springframework.ws.client.core.WebServiceTemplate">
    <property name="marshaller" ref="marshaller_rules" />
    <property name="unmarshaller" ref="marshaller_rules" />
    <property name="defaultUri"
        value="http://dev05:8080/.." />
</bean>

please tell me how to overcome with this problem or why this error occurs any help will be appreciated thank you.

share|improve this question

2 Answers 2

Use the @Qualifier annotation to help Spring determine which bean should be injected.

public class TestClass {

    @Autowired
    @Qualifier("admin")
    WebServiceTemplate admin;

    @Autowired
    @Qualifier("rules")
    WebServiceTemplate rules;

    // ... Rest of your class

}

Read up on the documentation here under the section Fine-tuning annotation-based autowiring with qualifiers.

Update:

You also need to change your xml bean definitions like this:

<oxm:jaxb2-marshaller id="marshaller_admin" contextPath="a.com.b" />
<bean class="org.springframework.ws.client.core.WebServiceTemplate">
    <qualifier value="admin"/>
    <property name="marshaller" ref="marshaller_admin" />
    <property name="unmarshaller" ref="marshaller_admin" />
    <property name="defaultUri"
        value="http://dev05:8080/.." />
</bean>
<oxm:jaxb2-marshaller id="marshaller_rules" contextPath="r.com.b" />
<bean class="org.springframework.ws.client.core.WebServiceTemplate">
    <qualifier value="rules"/>
    <property name="marshaller" ref="marshaller_rules" />
    <property name="unmarshaller" ref="marshaller_rules" />
    <property name="defaultUri"
        value="http://dev05:8080/.." />
</bean>

Note the inclusion of <qualifier> tag under each bean definition.

share|improve this answer
    
@Qualifier("admin") public class TestClass {} –  abhishek ameta May 29 '12 at 11:17
    
this is not working –  abhishek ameta May 29 '12 at 11:19
1  
You have to post more information from your xml context file, if you are using xml configuration. If you using the @Service or @Component annotations instead, you have to give the bean a name like @Service("BeanName") and make sure the name matches what you pass into @Qualifier. –  Jeshurun May 29 '12 at 11:28
    
I have edited my question now please tell me what should be done –  abhishek ameta May 30 '12 at 7:05
1  
I've updated my answer. This should work. –  Jeshurun May 30 '12 at 13:57
up vote 0 down vote accepted

Hello this is the right answer

  public class TestClass {  

protected WebServiceOperations admin;
admin = (WebServiceOperations) getApplicationContext().getBean("admin");
protected WebServiceOperations rules;
rules = (WebServiceOperations) getApplicationContext().getBean("rules");

// ... Rest of the class

}

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.