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NEW QUESTION: 1
Which two options are ways in which an OSPFv3 router handles hello packets with a clear address-family bit? (Choose
two.)
A. IPv4 unicast packets are forwarded.
B. IPv4 unicast packets are discarded.
C. IPv6 unicast packets are forwarded.
D. IPv6 unicast packets are discarded.
Answer: B,C
Explanation:
A typical distance vector protocol saves the following information when computing the best path to a destination: the
distance (total metric or distance, such as hop count) and the vector (the next hop). For instance, all the routers in the
network in Figure 1 are running Routing Information Protocol (RIP). Router Two chooses the path to Network A by
examining the hop count through each available path.

Since the path through Router Three is three hops, and the path through Router One is two hops, Router Two chooses
the path through One and discards the information it learned through Three. If the path between Router One and
Network A goes down, Router Two loses all connectivity with this destination until it times out the route of its routing
table (three update periods, or 90 seconds), and Router Three re-advertises the route (which occurs every 30 seconds
in RIP). Not including any hold-down time, it will take between 90 and 120 seconds for Router Two to switch the path
from Router One to Router Three.
EIGRP, instead of counting on full periodic updates to re-converge, builds a topology table from each of its neighbor's
advertisements (rather than discarding the data), and converges by either looking for a likely loop-free route in the
topology table, or, if it knows of no other route, by querying its neighbors. Router Two saves the information it
received from both Routers One and Three. It chooses the path through One as its best path (the successor) and the
path through Three as a loop-free path (a feasible successor). When the path through Router One becomes
unavailable, Router Two examines its topology table and, finding a feasible successor, begins using the path through
Three immediately.
Reference: http://www.cisco.com/c/en/us/support/docs/ip/enhanced-interior-gateway-routing-protocol-
eigrp/16406-eigrp-toc.html

NEW QUESTION: 2
ネットワーク上のスタブエリアの潜在的な設定ミスのトラブルシューティングを行っています。エリア境界ルーター(ABR)によってエリアに挿入されているLSAを確認して、構成を確認することにしました。 ABRはどのLSAタイプをスタブエリアに入れないようにすべきですか?
A. Type 2
B. Type 5
C. Type 1
D. Type 4
E. Type 3
Answer: B
Explanation:
The type 5 link-state advertisement (LSA) is the autonomous system LSA. Autonomous system (AS) external link advertisements, which are generated by ASBRs, describe routes to destinations that are external to the AS. They get flooded everywhere, except into special areas.
A stub area is a special area type that does not accept information about routes that are external to the autonomous system. All the type 5 LSAs are dropped by the stub ABR and do not enter the stub area. To provide reachability to external destinations, the stub ABR advertises a default route using a type 3 LSA.
The type 1 link-state advertisement (LSA) is the router LSA. Every router, including an ABR, generates router link advertisements for each area to which it belongs. Router link advertisements describe the state of the router links to the area and are flooded only within that particular area. The type 1 LSA is not prevented from entering the stub area by the ABR.
The type 2 link-state advertisement (LSA) is the network LSA. DRs generate network link advertisements for multiaccess networks. Network link advertisements describe the set of routers that are attached to a particular multiaccess network. Network link advertisements are flooded in the area that contains the network. The link-state ID of the type 2 LSA is the IP interface address of the DR. The type 2 LSA is not prevented from entering the stub area by the ABR.
The type 3 link-state advertisement (LSA) is the summary LSA. An ABR takes the information that it learned in one area and then describes and summarizes it for another area in the summary link advertisement. This summarization is not on by default. The link-state ID of the type 3 LSA is the destination network number. The type 3 LSA can be advertised to the stub area by an ABR.
The type 4 link-state advertisement (LSA) is the autonomous system boundary router (ASBR) summary LSA. The ASBR summary link advertisement informs the rest of the OSPF domain how to get to the ASBR. The link-state ID includes the router ID of the described ASBR. The type 4 LSA is not prevented from entering the stub area by the ABR.

NEW QUESTION: 3
メッセージをキューに書き込むには、最初にどの操作を行う必要がありますか?
A. キューに接続します
B. キューを開く
C. キューを読み取り/書き込みモードに設定します
D. キューが空であることを確認
Answer: B