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NEW QUESTION: 1
Refer to the exhibit. Which two statements are true? (Choose two.)
A. This router is an ASBR.
B. This router is an ABR.
C. This is the output of the show ip protocols command.
D. This is the output of the show ip ospf command.
E. Authentication is not configured for the area.
Answer: D,E
Explanation:
Explanation/Reference:
Explanation:
The following is sample output from the show ip ospf command when entered without a specific OSPF process ID with no authentication Router# show ip ospf Routing Process "ospf 201" with ID 10.0.0.1 and Domain ID 10.20.0.1 Supports only single TOS(TOS0) routes
Supports opaque LSA
SPF schedule delay 5 secs, Hold time between two SPFs 10 secs
Minimum LSA interval 5 secs. Minimum LSA arrival 1 secs
LSA group pacing timer 100 secs
Interface flood pacing timer 55 msecs
Retransmission pacing timer 100 msecs
Number of external LSA 0. Checksum Sum 0x0
Number of opaque AS LSA 0. Checksum Sum 0x0
Number of DCbitless external and opaque AS LSA 0
Number of DoNotAge external and opaque AS LSA 0
Number of areas in this router is 2. 2 normal 0 stub 0 nssa
External flood list length 0
Area BACKBONE(0)
Number of interfaces in this area is 2
Area has no authentication
SPF algorithm executed 4 times
Area ranges are
Number of LSA 4. Checksum Sum 0x29BEB
Number of opaque link LSA 0. Checksum Sum 0x0
Number of DCbitless LSA 3
Number of indication LSA 0
Number of DoNotAge LSA 0
Flood list length 0
Reference: http://www.cisco.com/c/en/us/td/docs/ios-xml/ios/iproute_ospf/command/iro-cr-book/ospf- s1.html#wp8749965360

NEW QUESTION: 2
Webサービスに展開されたAzure Machine Learningモデルがあります。
ml.contoso.comという名前を使用して、Webサービスを公開する予定です。
Webサービスへのアクセスが暗号化されていることを確認するソリューションを推奨する必要があります。
推奨する3つのアクションはどれですか?それぞれの正解はソリューションの一部を示しています。
注:それぞれの正しい選択には1ポイントの価値があります。
A. 展開スロットを追加します
B. DNSを更新
C. SSL証明書を取得します
D. 共有アクセス署名(SAS)を生成します
E. Azure Key Vaultを作成する
F. Webサービスを更新します
Answer: B,C,F
Explanation:
The process of securing a new web service or an existing one is as follows:
1. Get a domain name.
2. Get a digital certificate.
3. Deploy or update the web service with the SSL setting enabled.
4. Update your DNS to point to the web service.
Note: To deploy (or re-deploy) the service with SSL enabled, set the ssl_enabled parameter to True, wherever applicable. Set the ssl_certificate parameter to the value of the certificate file and the ssl_key to the value of the key file.
References:
https://docs.microsoft.com/en-us/azure/machine-learning/service/how-to-secure-web-service

NEW QUESTION: 3
What will be the peak shape rate based on the configuration that follows?
policy-map setpeak
class all-traffic
shape peak 32000
A. 16000 bps
B. 96000 bps
C. 80000 bps
D. 48000 bps
E. 32000 bps
F. 64000 bps
Answer: F
Explanation:
Traffic shaping allows you to control the traffic going out an interface in order to match its transmission to the speed of the remote, target interface and to ensure that the traffic conforms to policies contracted for it. Traffic adhering to a particular profile can be shaped to meet downstream requirements, thereby eliminating bottlenecks in topologies with data-rate mismatches. Using the Class-Based Shaping feature, you can do the following:
Configure generic traffic shaping (GTS) on a traffic class
Specify average rate or peak rate traffic shaping
Configure class-based weighted fair queueing (CBWFQ) inside GTS Class-based shaping can be enabled on any interface that supports GTS. Configuring GTS on a Traffic Class Using the Class-Based Shaping feature, you can configure GTS on a class, rather than only on an access control list (ACL). In order to do so, you must first define traffic classes based on match criteria including protocols, ACLs, and input interfaces. You can then apply traffic shaping to each defined class. Specifying Average Rate or Peak Rate Traffic Shaping Traffic shaping limits the rate of transmission of data. In addition to using a specifically configured transmission rate, you can use GTS to specify a derived transmission rate based on the level of congestion. You can specify two types of traffic shaping; average rate shaping and peak rate shaping. Average rate shaping limits the transmission rate to the committed information rate (CIR). Using the CIR ensures that the average amount of traffic being sent conforms to the rate expected by the network. Peak rate shaping configures the router to send more traffic than the CIR. To determine the peak rate, the router uses the following formula: peak rate = CIR(1+Be/Bc) where:
Be is the Excess Burst rate.
Bc is the Committed Burst rate. Peak rate shaping allows the router to burst higher than average rate shaping. However, using peak rate shaping, the traffic sent above the CIR (the delta) has the potential of being dropped if
the network becomes congested. If your network has additional bandwidth available (over the provisioned CIR) and the application or class can tolerate occasional packet loss, that extra bandwidth can be exploited through the use of peak rate shaping. However, there may be occasional packet drops when network congestion occurs. If the traffic being sent to the network must strictly conform to the configured network provisioned CIR, then you should use average traffic shaping. Configuring CBWFQ Inside GTS Prior to this release, when GTS queues packets that, when sent, cause the traffic flow to violate the configured rate, only flow-based WFQ was supported for the queued packets. Using the Class-Based Shaping feature, CBWFQ is supported for the queued packets. You can use CBWQ to configure classes of queued traffic and provide relative or absolute bandwidth guarantees to those classes. Note that the relative or absolute bandwidth guarantees are with regard to the configured CIR.