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I have a simple Spring Bean Expression, which evaluates fine when I define it inside an application context file:

<bean id="myConfigBean" class="com.example.myBeanConfigBean">
    <property name="myProperty" value="#{ someOtherBean.getData() }"/>
</bean>

Now, I want to do the same evaluation programmatically. I have used the following code:

final ExpressionParser parser = new SpelExpressionParser();
final TemplateParserContext templateContext = new TemplateParserContext();
Expression expression = parser.parseExpression("#{ someOtherBean.getData() }", templateContext);
final String value = (String) expression.getValue();

This throws an exception:

EL1007E:(pos 22): Field or property 'someOtherBean' cannot be found on null

I guess I have to set a root object somehow that allows to the configured beans like a property. But I did not get it to work yet. Anyone, who has done this already and could give a hint?

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1 Answer 1

up vote 3 down vote accepted

implement BeanFactoryAware to get a reference to the bean factory; then...

StandardEvaluationContext context = new StandardEvaluationContext();
context.setBeanResolver(new BeanFactoryResolver(this.beanFactory));
Expression expression = parser.parseExpression("@someOtherBean.getData()"); 
// or "@someOtherBean.data"
final String value = expression.getValue(context, String.class);
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