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Code d'Examen: 000-183
Nom d'Examen: IBM (IBM WebSphere Mesage Broker V7.0, Solution Development)
Questions et réponses: 114 Q&As
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NO.1 When a message is received by an Input node in a message flow, the message assembly is
created.Which tree or trees are populated when an error free message is received by a FileInput node?
A.The Message tree only.
B.The Message tree and Environment tree.
C.The Message tree and LocalEnvironment tree.
D.The Message tree, Environment tree, LocalEnvironment tree, and ExceptionList tree.
Answer: C
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NO.2 Which Message Broker artifact type is not analyzed by Impact Analysis?
A..esql
B..mset
C..msgmap
D..msgflow
Answer: B
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NO.3 A developer has a message flow that consists of an MQInput node, Compute node and MQOutput
node.The message is parsed by the XMLNSC domain.The Compute node will extract the name and age
of each player, then send them onto the register players application to have the team registered.The input
message that the Compute node will be processing is shown below.
What MUST be done to access the information from the first player?
A.Set OutputRoot.XMLNSC.RegPlayer.Player[NextCount] = InputBody.Body.Player[1]
B.Set OutputRoot.XMLNSC.RegPlayer.Player[NextCount] = InputBody.DetailedMsg.Body.Player[1]
C.Set OutputRoot.XMLNSC.RegPlayer.Player[NextCount] = InputRoot.DetailedMsg.Body.Player[0]C.Set
OutputRoot.XMLNSC.RegPlayer.Player[NextCount] = InputRoot.DetailedMsg.Body.Player[0]
D.Set OutputRoot.XMLNSC.RegPlayer.Player[NextCount] = InputRoot.DetailedMsg.Body.Player[1]D.Set
OutputRoot.XMLNSC.RegPlayer.Player[NextCount] = InputRoot.DetailedMsg.Body.Player[1]
Answer: B
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NO.4 Consider the following two implementations of a request/response pattern.1) Asynchronous with a
separate flow for the response logic using an MQInput node
2)
Synchronous, completing the round trip in the same flow pulling the response message with an MQGet
node
Which of the following is FALSE?
A.Multiple flow instances will not help throughput in either implementation.
B.The synchronous implementation will require more memory, especially in scenarios with large
messages and high throughput requirements.
C.Given sufficient resources, the synchronous implementation will perform better in cases where large
amounts of data (i
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