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NEW QUESTION: 1
XYZ社のインターネットワークインフラストラクチャは、図に示すように単一のOSPFエリアで構成されています。ルータリソースの不足がインターネットワークのパフォーマンスを妨げているという懸念があります。
ルータリソースの調査の一環として、OSPF DRを知る必要があります。すべてのルータOSPF優先順位はデフォルトにあり、ルータIDは各ルータと共に表示されます。
どのルータがDRとして選出された可能性がありますか? (2つ選んでください。)
A. Corp-4
B. Corp-1
C. Corp-3
D. 分岐2
E. Corp-2
F. 支店-1
Answer: A,D
Explanation:
There are 2 segments on the topology above which are separated by Corp-3 router.
Each segment will have a DR so we have 2 DRs.
To select which router will become DR they will compare their router-IDs. The router with highest (best) router-ID will become DR. The router-ID is chosen in the order below:
The highest IP address assigned to a loopback (logical) interface.
If a loopback interface is not defined, the highest IP address of all active router's physical interfaces will be chosen.
In this question, the IP addresses of loopback interfaces are not mentioned so we will consider IP addresses of all active router's physical interfaces. Router Corp-4 (10.1.40.40) & Branch-2 (10.2.20.20) have highest "active" IP addresses so they will become DRs.
NEW QUESTION: 2
Welche Funktionen importieren Personalstammdaten in die Personalabrechnung?
Es gibt 3 richtige Antworten auf diese Frage.
A. PTIP
B. PAB
C. RAB
D. WPBP
E. P2010
Answer: C,D,E
NEW QUESTION: 3
Your company currently has a 2-tier web application running in an on-premises data center. You have experienced several infrastructure failures in the past two months resulting in significant financial losses.
Your CIO is strongly agreeing to move the application to AWS. While working on achieving buy-in from the other company executives, he asks you to develop a disaster recovery plan to help improve Business continuity in the short term. He specifies a target Recovery Time Objective (RTO) of 4 hours and a Recovery Point Objective (RPO) of 1 hour or less. He also asks you to implement the solution within 2 weeks.
Your database is 200GB in size and you have a 20Mbps Internet connection. How would you do this while minimizing costs?
A. Install your application on a compute-optimized EC2 instance capable of supporting the application's average load. Synchronously replicate transactions from your on-premises database to a database instance in AWS across a secure Direct Connect connection.
B. Create an EBS backed private AMI which includes a fresh install of your application. Setup a script in your data center to backup the local database every 1 hour and to encrypt and copy the resulting file to an S3 bucket using multi-part upload.
C. Create an EBS backed private AMI which includes a fresh install of your application. Develop a CloudFormation template which includes your AMI and the required EC2, AutoScaling, and ELB resources to support deploying the application across Multiple- Availability-Zones. Asynchronously replicate transactions from your on-premises database to a database instance in AWS across a secure VPN connection.
D. Deploy your application on EC2 instances within an Auto Scaling group across multiple availability zones. Asynchronously replicate transactions from your on-premises database to a database instance in AWS across a secure VPN connection.
Answer: C
Explanation:
Explanation/Reference:
Explanation:
Overview of Creating Amazon EBS-Backed AMIs
First, launch an instance from an AMI that's similar to the AMI that you'd like to create. You can connect to your instance and customize it. When the instance is configured correctly, ensure data integrity by stopping the instance before you create an AMI, then create the image. When you create an Amazon EBS-backed AMI, we automatically register it for you.
Amazon EC2 powers down the instance before creating the AMI to ensure that everything on the instance is stopped and in a consistent state during the creation process. If you're confident that your instance is in a consistent state appropriate for AMI creation, you can tell Amazon EC2 not to power down and reboot the instance. Some file systems, such as XFS, can freeze and unfreeze activity, making it safe to create the image without rebooting the instance.
During the AMI-creation process, Amazon EC2 creates snapshots of your instance's root volume and any other EBS volumes attached to your instance. If any volumes attached to the instance are encrypted, the new AMI only launches successfully on instances that support Amazon EBS encryption. For more information, see Amazon EBS Encryption.
Depending on the size of the volumes, it can take several minutes for the AMI-creation process to complete (sometimes up to 24 hours). You may find it more efficient to create snapshots of your volumes prior to creating your AMI. This way, only small, incremental snapshots need to be created when the AMI is created, and the process completes more quickly (the total time for snapshot creation remains the same).
For more information, see Creating an Amazon EBS Snapshot.
After the process completes, you have a new AMI and snapshot created from the root volume of the instance. When you launch an instance using the new AMI, we create a new EBS volume for its root volume using the snapshot. Both the AMI and the snapshot incur charges to your account until you delete them. For more information, see Deregistering Your AMI.
If you add instance-store volumes or EBS volumes to your instance in addition to the root device volume, the block device mapping for the new AMI contains information for these volumes, and the block device mappings for instances that you launch from the new AMI automatically contain information for these volumes. The instance-store volumes specified in the block device mapping for the new instance are new and don't contain any data from the instance store volumes of the instance you used to create the AMI.
The data on EBS volumes persists. For more information, see Block Device Mapping.
NEW QUESTION: 4
Refer to the exhibit. What is the overall type of queuing being used on the outgoing data for interface Ethernet0/1?
Cisco 350-001 Exam
A. CBWFQ
B. FIFO
C. priority queuing
D. LLQ
E. weighted fair queuing
Answer: D
Explanation:
Explanation
The above exhibit is an example of Class-Based Weighted Fair Queueing (CBWFQ).
After the weight for a packet is assigned, the packet is enqueued in the appropriate class queue.
CBWFQ uses the weights assigned to the queued packets to ensure that the class queue is
serviced fairly.
Configuring a class policy-thus, configuring CBWFQ-entails these three processes: Defining traffic classes to specify the classification policy (class maps). This process determines how many types of packets are to be differentiated from one another. Associating policies-that is, class characteristics-with each traffic class (policy maps). This process entails configuration of policies to be applied to packets belonging to one of the classes previously defined through a class map. For this process, you configure a policy map that specifies the policy for each traffic class.
Attaching policies to interfaces (service policies). This process requires that you associate an existing policy map, or service policy, with an interface to apply the particular set of policies for the map to that interface.
Reference http://www.cisco.com/en/US/docs/ios/12_0t/12_0t5/feature/guide/cbwfq.html#wp17641
Low Latency Queuing (LLQ) is a feature developed by Cisco to bring strict priority queuing (PQ) to Class-Based Weighted Fair Queuing (CBWFQ). LLQ allows delay-sensitive data (such as voice) to be given preferential treatment over other traffic by letting the data to be dequeued and sent first Low Latency Queueing Configuration Task List
To configure LLQ, perform the tasks described in the following sections. The task in the first section is required; the tasks in the remaining sections are optional.
Configuring LLQ (Required)
Configuring the Bandwidth Limiting Factor (Optional)
Verifying LLQ (Optional)
Monitoring and Maintaining LLQ (Optional)
See the end of this chapter for the section "LLQ Configuration Examples."
Configuring LLQ
To give priority to a class within a policy map, use the following command in policy-map class
configuration mode:
Configuring the Bandwidth Limiting Factor
To change the maximum reserved bandwidth allocated for CBWFQ, LLQ, and IP RTP Priority, use
the following command in interface configuration mode:
Verifying LLQ
To display the contents of the priority queue, such as queue depth and the first packet queued,
use the following command in EXEC mode:
The priority queue is the queue whose conversation ID is equal to the number of dynamic queues
plus 8. The packets in the priority queue have a weight of 0.
Monitoring and Maintaining LLQ
To tune your RTP bandwidth or decrease RTP traffic if the priority queue is experiencing drops,
use the following commands in EXEC mode, as needed:
LLQ
The Low Latency Queueing feature brings strict priority queueing to Class-Based Weighted Fair
Queueing (CBWFQ). Strict priority queueing allows delay-sensitive data such as voice to be
dequeued and sent first (before packets in other queues are dequeued), giving delay-sensitive
data preferential treatment over other traffic.
Without Low Latency Queueing, CBWFQ provides weighted fair queueing based on defined
classes with no strict priority queue available for real-time traffic. CBWFQ allows you to define
traffic classes and then assign characteristics to that class. For example, you can designate the
minimum bandwidth delivered to the class during congestion.
For CBWFQ, the weight for a packet belonging to a specific class is derived from the bandwidth
you assigned to the class when you configured it. Therefore, the bandwidth assigned to the
packets of a class determines the order in which packets are sent. All packets are serviced fairly
based on weight; no class of packets may be granted strict priority. This scheme poses problems
for voice traffic that is largely intolerant of delay, especially variation in delay. For voice traffic,
variations in delay introduce irregularities of transmission manifesting as jitter in the heard
conversation.
The Low Latency Queueing feature provides strict priority queueing for CBWFQ, reducing jitter in
voice conversations. Configured by the priority command, Low Latency Queueing enables use of a
single, strict priority queue within CBWFQ at the class level, allowing you to direct traffic belonging
to a class to the CBWFQ strict priority queue. To enqueue class traffic to the strict priority queue,
you configure the priority command for the class after you specify the named class within a policy
map. (Classes to which the priority command is applied are considered priority classes.) Within a
policy map, you can give one or more classes priority status.
When multiple classes within a single policy map are configured as priority classes, all traffic from
these classes is enqueued to the same, single, strict priority queue. One of the ways in which the
strict priority queueing used within CBWFQ differs from its use outside CBWFQ is
in the parameters it takes. Outside CBWFQ, by using the ip rtp priority command, you specify the
range of UDP ports whose voice traffic flows are to be given priority service. Using the priority
command, because you can configure the priority status for a class within CBWFQ, you are no
longer limited to a UDP port number to stipulate priority flows. Instead, all of the valid match
criteria used to specify traffic for a class now applies to priority traffic. These methods of specifying
traffic for a class include matching on access lists, protocols, and input interfaces. Moreover,
within an access list you can specify that traffic matches are allowed based on the
IP Differentiated Services Code Point (DSCP) value that is set using the first six bits of the Type of
Service (ToS) byte in the IP header. Although it is possible to enqueue various types of real-time traffic to the strict priority queue, we strongly recommend that you direct only voice traffic to it. This recommendation is made because voice traffic is wellbehaved, whereas other types of real-time traffic are not. Moreover, voice traffic requires that delay be nonvariable in order to avoid jitter. Real-time traffic such as video could introduce variation in delay, thereby thwarting the steadiness of delay required for successful voice traffic transmission. Configuration Tasks See the following sections for configuration tasks for the Low Latency Queueing feature. Each task in the list indicates if the task is optional or required.
Configuring Low Latency Queueing (Required) Verifying Low Latency Queueing (Optional) Configuring Low Latency Queueing
To give priority to a class within a policy map, use the following command in policy-map class configuration mode:
Verifying Low Latency Queueing To see the contents of the priority queue (such as queue depth and the first packet queued), use the following command in EXEC mode:
The priority queue is the queue whose conversation ID is equal to the number of dynamic queues plus 8. The packets in the priority queue have a weight of 0.
Reference http://www.cisco.com/en/US/docs/ios/12_0t/12_0t7/feature/guide/pqcbwfq.html#wp5329 http://www.cisco.com/en/US/docs/ios/12_2/qos/configuration/guide/ qcfwfq_ps1835_TSD_Products_Configuration_Guide_Chapter.html#wp1001719