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NEW QUESTION: 1
Which statement best describes Cisco OTV internal interfaces?
A. They are interfaces that perform Layer 3 forwarding with aggregation switches.
B. They are Layer 2 interfaces that are configured as either access or trunk interfaces on the switch.
C. They are the interfaces that connect to the ISP.
D. They are tunnel interfaces that are configured with GRE encapsulation.
Answer: B
Explanation:
https://www.cisco.com/c/en/us/td/docs/solutions/Enterprise/Data_Center/DCI/whitepaper/D
CI3_OTV_Intro/DCI_1.html
"Internal Interfaces To perform OTV functionality, the edge device must receive the Layer 2 traffic for all VLANs that need to be extended to remote locations. The Layer 2 interfaces, where the Layer 2 traffic is usually received, are named internal interfaces"

NEW QUESTION: 2
You consider using RPL in a new loT environment. Which definition of a DIO is true?
A. A DIO is an ICMPv4 RPL control message whose main function is to propagate destination information in a RPL
network
B. A DIO is an ICMPv6 RPL control message whose main function is to perform DODAG discovery, formation, and
maintenance
C. A DIO is an ICMPv6 RPL control message whose main function is to perform DODAG secure message Counters
D. A DIO is an ICMPv4 RPL control message whose main function is to perform DODAG discovery, formation, and
maintenance
Answer: B

NEW QUESTION: 3
When enabling interdomain multicast routing, which two statements are correct? (Choose two.)
A. Use MSDP to enable the RPs from different domains to exchange information about active multicast sources
B. Multiprotocol BGP is used instead of PIM SM to build the intradomain and interdomain multicast distribution trees
C. MSDP SA packets are sent between the multiprotocol BGP peers
D. Noncongruent unicast and multicast topologies can be supported using multiprotocol BGP
Answer: A,D
Explanation:
Explanation/Reference:
http://prakashkalsaria.wordpress.com/2010/08/11/mbgp-msdp/
MSDP
In the PIM-SM model, multicast sources and receivers must register with their local RP. Actually, the router closest to the sources or receivers registers with the RP, but the key point to note is that the RP knows about all the sources and receivers for any particular group. RPs in other domains have no way of knowing about sources located in other domains. MSDP is an elegant way to solve this problem.
MSDP is a mechanism that allows RPs to share information about active sources. RPs know about the receivers in their local domain. When RPs in remote domains hear about the active sources, they can pass on that information to their local receivers and multicast data can then be forwarded between the domains.
A useful feature of MSDP is that it allows each domain to maintain an independent RP that does not rely on other domains, but it does enable RPs to forward traffic between domains. PIM-SM is used to forward the traffic between the multicast domains.
The RP in each domain establishes an MSDP peering session using a TCP connection with the RPs in other domains or with border routers leading to the other domains. When the RP learns about a new multicast source within its own domain (through the normal PIM register mechanism), the RP encapsulates the first data packet in a Source-Active (SA) message and sends the SA to all MSDP peers. The SA is forwarded by each receiving peer using a modified RPF check, until the SA reaches every MSDP router in the interconnected networks-theoretically the entire multicast internet. If the receiving MSDP peer is an RP, and the RP has a (*, G) entry for the group in the SA (there is an interested receiver), the RP creates (S, G) state for the source and joins to the shortest path tree for the source. The encapsulated data is decapsulated and forwarded down the shared tree of that RP. When the packet is received by the last hop router of the receiver, the last hop router also may join the shortest path tree to the source. The MSDP speaker periodically sends SAs that include all sources within the own domain of the RP
http://www.cisco.com/en/US/docs/ios_xr_sw/iosxr_r3.2/routing/configuration/guide/rc32bgp.html Multiprotocol BGP Multiprotocol BGP is an enhanced BGP that carries routing information for multiple network layer protocols and IP multicast routes. BGP carries two sets of routes, one set for unicast routing and one set for multicast routing. The routes associated with multicast routing are used by the Protocol Independent Multicast (PIM) feature to build data distribution trees.
Multiprotocol BGP is useful when you want a link dedicated to multicast traffic, perhaps to limit which resources are used for which traffic. Multiprotocol BGP allows you to have a unicast routing topology different from a multicast routing topology providing more control over your network and resources.
In BGP, the only way to perform interdomain multicast routing was to use the BGP infrastructure that was in place for unicast routing. Perhaps you want all multicast traffic exchanged at one network access point (NAP). If those routers were not multicast capable, or there were differing policies for which you wanted multicast traffic to flow, multicast routing could not be supported without multiprotocol BGP.
Note It is possible to configure BGP peers that exchange both unicast and multicast network layer reachability information (NLRI), but you cannot connect multiprotocol BGP clouds with a BGP cloud. That is, you cannot redistribute multiprotocol BGP routes into BGP.



NEW QUESTION: 4
あなたのチームは、最近の計画外の停止に続いて、根本分析(RCA)を実施しています。本番WebLogicサーバーに接続されているブロックボリュームの1つが削除され、アクションのソースを特定するタスクがありました。監査ログを検索して、過去24時間に発生したいくつかの削除アクションを見つけます。このイベントのサンプルを考えてみましょう。

イベントログのどの項目が、DeleteVolumeAPI呼び出しを開始した個人またはサービスを識別するのに役立ちますか?
A. eventId
B. requestAgent
C. principalld
D. eventource
E. requestOrigin
Answer: C
Explanation:
The Oracle Cloud Infrastructure Audit service automatically records calls to all supported Oracle Cloud Infrastructure public application programming interface (API) endpoints as log events. Currently, all services support logging by Audit.
Every audit log event includes two main parts:
Envelopes that act as a container for all event messages
Payloads that contain data from the resource emitting the event message The identity object contains the following attributes.
data.identity.authType The type of authentication used.
data.identity.principalId The OCID of the principal.
data.identity.principalName The name of the user or service. This value is the friendly name associated with principalId .