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NEW QUESTION: 1
When Service A receives a message from Service Consumer A(1),the message is
processed by Component A.
This component first invokes Component B (2), which uses values from the message to query Database A in order to retrieve additional data.
Component B then returns the additional data to Component A.
Component A then invokes Component C (3), which interacts with the API of a legacy
system to retrieve a new data value. Component C then returns the data value back to
Component A.
Next, Component A sends some of the data it has accumulated to Component D (4), which
writes the data to a text file that is placed in a specific folder. Component D then waits until
this file is imported into a different system via a regularly scheduled batch import. Upon
completion of the import, Component D returns a success or failure code back to
Component A.
Component A finally sends a response to Service Consumer A (5) containing all of the data
collected so far and Service Consumer A writes all of the data to Database B (6).
Components A, B, C.
and D belong to the Service A service architecture. Database A, the legacy system, and the file folders are shared resources within the IT enterprise.
Service A is a task service that completes an entire business task on its own without having
to compose other services. However, you have received many complaints about the
reliability of Service A . Specifically, it has three problems. First, when Component B
accesses Database A, it may not receive a response for several minutes when the
database is being accessed by other applications in the IT enterprise. Secondly, the legacy
system accessed by Component C frequently crashes and therefore becomes unavailable
for extended periods of time. Third, for Component D to respond to Component A, it must
first wait for the batch import of the files to occur. This can take several minutes during
which Service Consumer A remains stateful and consumes excessive memory. What steps
can be taken to address these three problems?
A. The Service Data Replication pattern can be applied so that Component B can access a
replicated database instead of having to access the shared Database A directly. The
Legacy Wrapper pattern can be applied so that Component C is separated into a separate
service that acts as a wrapper of the legacy system API. Next, the Asynchronous Queuing
pattern can be applied so that a messaging queue is positioned between Component A and
the new wrapper service, thereby enabling communication during times when the legacy
system is unavailable. Finally, Component D is separated into a new service and the
Event-Driven Messaging pattern is applied to establish a publisher-subscriber relationship
between this service and Component A and between Service A and Service Consumer A.
The interaction logic is redesigned as follows: Component A interacts with Component B,
the new wrapper service, and then issues a request to the new event-driven service. Upon
receiving a response triggered by the event related to the batch import, Service A responds
to Service Consumer A.
B. The Legacy Wrapper pattern can be applied so that Component B is separated to wrap
the shared database, thereby allowing Component A to interact with this new service
instead of directly interacting with the database. The Legacy Wrapper pattern can be
applied again so that Component C is separated into a separate service that acts as a
wrapper of the legacy system API. Component D can then be separated into a separate
service and the Event-Driven Messaging pattern can be applied to establish a publisher-
subscriber relationship between this new service and Component A and between Service A
and Service Consumer A.
The interaction between Service Consumer A and Component A is then redesigned so that Component A issues a message back to Service Consumer A
when the event related to the batch import is triggered.
C. None of the above.
D. The Service Data Replication pattern can be applied so that Component B can access a
replicated database instead of having to access the shared Database A directly. The
Legacy Wrapper pattern can be applied so that Component C is separated into a separate
service that acts as a wrapper of the legacy system API. Next, the Reliable Messaging
pattern can be applied so that acknowledgements are issued from the new wrapper service
to Component A, thereby enabling notifying Component A during times when the legacy
system is unavailable. Finally, Component D is separated into a separate service and the
Event-Driven Messaging pattern is applied to establish a publisher-subscriber relationship
between this new service and Component A.
The interaction between Service Consumer A and Component A is then redesigned so that Component A first interacts with Component
B and the new wrapper service. Service A then issues a final message back to Service
Consumer A.
Answer: A
NEW QUESTION: 2
What happens when you attempt to compile and run the following code?
#include <vector>
#include <iostream>
class A {
public:
virtual int f() { return 10; }
virtual ~A(){}
};
class B: public A {
int f() {return 11; }
virtual ~B(){}
};
int main (){
std::vector<A*>v1;
for(int i = 10; i>0; i??)
{
i%2>0?v1.push_back(new A()):v1.push_back(new B());
}
std::vector<A*>::iterator it = v1.begin();
while(it != v1.end())
{
std::cout<<v1.back()?>f()<<" ";
v1.pop_back();++it;
}
return 0;
}
A. program outputs 10 11 10 11 10
B. destructor of class B will be called
C. destructor of class A will be called
D. code will not compile
E. program outputs 10 11 10 11 10 11 10 11 10 11
Answer: A
NEW QUESTION: 3
A customer plans to virtualize their environment by using HP consolidation and virtualization services.
What outcomes should the customer expect during the implementation phase? (Select two.)
A. Deployment of physical infrastructure
B. Creation of a migration plan
C. Application development and modification
D. Transfer of knowledge
Answer: A,C
NEW QUESTION: 4
Which two features are used for inspection when IPv6 address glean is enabled? (Choose two.)
A. UDP messages
B. ND messages
C. TCP messages
D. DHCP messages
E. ICMPv6 messages
Answer: B,D
Explanation:
Explanation/Reference:
Explanation:
IPv6 address glean is the foundation for many other IPv6 features that depend on an accurate binding table. It inspects ND and DHCP messages on a link to glean addresses, and then populates the binding table with these addresses. This feature also enforces address ownership and limits the number of addresses any given node is allowed to claim.
Reference. http://www.cisco.com/c/en/us/td/docs/ios-xml/ios/ipv6_fhsec/configuration/15-s/ip6f-15- s-book/ ip6-snooping.html