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Suppose I have a XML:

<root>
   <node>
      <order-id>4</order-id>
      .....
   </node>

   <node>
      <order-id>1</order-id>
      ....
   </node>
</root>

When I unmarshal this xml I want that the List<Node> I get is be sorted with order-id value.

Is there a way using JAXB that I directly get the sorted List?

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1 Answer 1

up vote 5 down vote accepted

If you don't mind Set instead of List, try

@XmlRootElement(name="node")
    class Node implements Comparable<Node> {
        @XmlElement(name="order-id")
        int orderId;

        @Override
        public int compareTo(Node n) {
            return orderId - n.orderId;
        }
    }

    @XmlRootElement(name="root")
    class Root {
        @XmlElement(name="node")
        Set<Node> nodes = new TreeSet<>(); 
    }

works fine. And if Set is not an option, then change Root as

@XmlRootElement(name="root")
class Root {
    List<Node> nodes;

    @XmlElement(name="node")
    public void setNodes(Node[] nodes) {
        Arrays.sort(nodes);
        this.nodes = Arrays.asList(nodes);
    }
}
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1  
Thanks I would try this. Also there is apache commons collection called TreeList, maybe that will work for me too without losing the List implementation. –  Narendra Pathai Jan 18 '13 at 10:20
2  
I do not think this is the responsibility of JAXB, is it? I mean without relying on the underlying collection there is no way to do it. –  Narendra Pathai Jan 18 '13 at 10:24
1  
Yes @NarendraPathai, you are right –  TechSpellBound Jan 18 '13 at 10:29
1  
I think we can fix the problem with JDK List, see my update –  Evgeniy Dorofeev Jan 18 '13 at 10:32
1  
@EvgeniyDorofeev: I agree with your first solution. Set makes more sense in this case because of sorting on the ID. –  TechSpellBound Jan 18 '13 at 10:36

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