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Can someone please tell me how I can wire the following constructor with a Map object without using XML, and just using annotations? Is it possible?

public class MyClass {
...
    public MyClass (final Map<String, SomeBean> map) {
        this.map = map;
    }
...
}

Current XML I would like to get rid of:

<bean id="mybean" class="my.package.MyClass">
    <constructor-arg>
        <util:map>
            <entry key="KEY1" value-ref="ref-bean1" />
            <entry key="KEY2" value-ref="ref-bean2" />
        </util:map>
    </constructor-arg>
</bean>

<bean id="ref-bean1" class="my.package.SomeBean">... </bean>

<bean id="ref-bean2" class="my.package.SomeBean">... </bean>
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Would it be OK to use @Configuration? This solution would only move the XML config to Java code. –  LaurentG Jun 29 '13 at 11:50

1 Answer 1

Assuming your Spring config is configured for annotation configuration, you should be able to eliminate the myBean declaration by just marking the constructor of MyClass as @Autowired.

public class MyClass {
...
    @Autowired
    public MyClass (final Map<String, SomeBean> map) {
        this.map = map;
    }
...
}

Spring will attempt to wire the MyClass constructor using a Map of SomeBean instances keyed by bean name.

As there are separate instances of SomeBean configured (presumably with their own state), you'll need to leave these in the XML.

<bean id="KEY1" class="my.package.SomeBean">... </bean>

<bean id="KEY2" class="my.package.SomeBean">... </bean>

Alternatively, as LaurentG says, there's always @Configuration.

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Thanks for your suggestions. I actually ended up autowiring the 2 beans as members of MyClass and then created the map in a getMap() method. Ideally, I would have liked to create this map in the default constructor of MyClass, but found that the 2 beans were not wired in at that point yet (they were null). –  user2533384 Jul 2 '13 at 1:45

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