I am trying to send a data model Java object to a Spring Integration Message Channel. I have a jms outbound channel adapter.

Here is my Java code. But it does not work.

@Autowired
MessageChannel outputChannel;

@Override 
public void sendToOutputQueue() 
{
    Record record = new Record();
    Record.setId("123456789");
    Record.setSerialNum("10000000");
    Record.setCode("ABC");


    Map<String, Object> map = new HashMap<String, Object>();
    map.put("record", record);

    outputChannel.send(MessageBuilder.withPayload(map).build());

}

Here is my Spring Integration config

<int:channel id="outputChannel" />  

<int-jms:outbound-channel-adapter id="outboundChannelAdapter" channel="outputChannel" jms-template="outputQueueJmsTemplate" />
  • What are symptoms you indicate as does not work? Maybe you have some error in logs? Maybe your Record is just not Serializable? – Artem Bilan Apr 16 at 20:39
  • Do I need to make my Record serializable ? Since HashMap is serializable by default, I thought I don't need to make Record serializable. – user2208990 Apr 17 at 2:34
  • ??? That’s not how things work in Java. A map is just a container of references. Of course, keys and values must be Serializable to be able to be transferred into JMS Broker. – Artem Bilan Apr 17 at 3:04
  • I made Record object serializable and passed the object to message payload without converting it to a Map. Now it can be sent successfully to MQ. – user2208990 Apr 17 at 14:48
  • Please, don't duplicate comments for me. That sounds like a spam. – Artem Bilan Apr 17 at 14:50

When you send a Map into JMS using JmsTemplate, it is wrapped to the MapMessage (by default):

else if (object instanceof Map) {
    return createMessageForMap((Map<? ,?>) object, session);
}

And you has to be sure that all the key of the map are of String type and values are primitivies. That's according a MapMessage JavaDocs:

/** A {@code MapMessage} object is used to send a set of name-value pairs.
  * The names are {@code String} objects, and the values are primitive 
  * data types in the Java programming language. The names must have a value that
  * is not null, and not an empty string. The entries can be accessed 
  * sequentially or randomly by name. The order of the entries is undefined. 
  * {@code MapMessage} inherits from the {@code Message} interface
  * and adds a message body that contains a Map.

And here is a snippet from the ActiveMQ MarshallingSupport:

public static void marshalPrimitive(DataOutputStream out, Object value) throws IOException {
    if (value == null) {
        marshalNull(out);
    } else if (value.getClass() == Boolean.class) {
        marshalBoolean(out, ((Boolean)value).booleanValue());
    } else if (value.getClass() == Byte.class) {
        marshalByte(out, ((Byte)value).byteValue());
    } else if (value.getClass() == Character.class) {
        marshalChar(out, ((Character)value).charValue());
    } else if (value.getClass() == Short.class) {
        marshalShort(out, ((Short)value).shortValue());
    } else if (value.getClass() == Integer.class) {
        marshalInt(out, ((Integer)value).intValue());
    } else if (value.getClass() == Long.class) {
        marshalLong(out, ((Long)value).longValue());
    } else if (value.getClass() == Float.class) {
        marshalFloat(out, ((Float)value).floatValue());
    } else if (value.getClass() == Double.class) {
        marshalDouble(out, ((Double)value).doubleValue());
    } else if (value.getClass() == byte[].class) {
        marshalByteArray(out, (byte[])value);
    } else if (value.getClass() == String.class) {
        marshalString(out, (String)value);
    } else  if (value.getClass() == UTF8Buffer.class) {
        marshalString(out, value.toString());
    } else if (value instanceof Map) {
        out.writeByte(MAP_TYPE);
        marshalPrimitiveMap((Map<String, Object>)value, out);
    } else if (value instanceof List) {
        out.writeByte(LIST_TYPE);
        marshalPrimitiveList((List<Object>)value, out);
    } else {
        throw new IOException("Object is not a primitive: " + value);
    }
}

So, your Record won't be accepted.

You need to consider do not use Map for JMS message and make your Record as Serializable to be able to send it over JMS. Or consider to use some other MessageConverter, not SimpleMessageConverter which is default. For example it seems for me a MappingJackson2MessageConverter should be good for you.

  • I made Record object serializable and then passed it directly into message payload without converting it to a Map. It worked this way. Now my problem moved to the receiving side. How do I retrieve it from Message as an object. Do I need to write a converter to deserialize it into Record object ? – user2208990 Apr 17 at 14:45
  • Not sure what is your concern, but the consumer is configured with the same SimpleMessageConverter as well. So, any Serializable should be handled as is. – Artem Bilan Apr 17 at 14:49
  • I sent it like this outputChannel.send(MessageBuilder.withPayload(paeRecord).build());And then receive it like this Record record = message.getPayload(); But I got exception saying Caused by: java.lang.ClassCastException: com.ibm.jms.JMSObjectMessage incompatible with com.noname.Record – user2208990 Apr 18 at 22:32
  • outputChannel.send(MessageBuilder.withPayload(record).build()); – user2208990 Apr 18 at 22:40
  • You need to show how you receive, but in your question, please. It’s not readable in the comments – Artem Bilan Apr 19 at 0:33

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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