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NEW QUESTION: 1
An organization requires a second technician to verify changes before applying them to network devices. When
checking the configuration of a network device, a technician determines that a coworker has improperly configured
the AS number on the device. This would result in which of the following?
A. The OSPF not-so-stubby area is misconfigured
B. Spanning tree ports in flooding mode
C. Reduced wireless network coverage
D. BGP routing issues
Answer: D
Explanation:
BGP (Border Gateway Protocol) is used to route data between autonomous systems (AS's)
A collection of networks that fall within the same administrative domain is called an autonomous system (AS).
The routers within an AS use an interior gateway protocol, such as the Routing Information Protocol (RIP) or the Open
Shortest Path First (OSPF) protocol, to exchange routing information among themselves. At the edges of an AS are
routers that communicate with the other AS's on the Internet, using an exterior gateway protocol such as the Border
Gateway Protocol (BGP).
NEW QUESTION: 2
A. Option D
B. Option C
C. Option B
D. Option A
Answer: B,C
NEW QUESTION: 3
実装グループは、テストベッドを使用して「概念実証」を実行しており、クライアント1とクライアント2の両方が209.65.200.241のWEBサーバーにアクセスする必要があります。ネットワークアドレス指定、ルーティングスキーム、DHCPサービス、NTPサービス、レイヤー2接続、FHRPサービス、およびデバイスセキュリティにいくつかの変更を加えた後、クライアント1が209.65.200.241アドレスにpingできないことを示すトラブルチケットが開かれました。
サポートされているコマンドを使用して、この障害の原因を特定し、次の質問に答えてください。
障害状態の解決策は何ですか?
A. EIGRPルーティングプロセスのAS番号を1から10に変更して、DSW1およびDSW2で使用されるAS番号を増やします。
B. EIGRPプロセスで、network 10.1.4.0 0.0.0.255コマンドを削除し、ネットワークを入力します
10.1.4.4 0.0.0.252および10.1.4.8 0.0.0.252コマンド。
C. EIGRPプロセスの自動要約を無効にします
D. no passive-interfaceコマンドを使用して、FastEthernet0 / 0およびFastEthernet0 / 1インターフェイスでEIGRPを有効にします。
Answer: A
Explanation:
On R4, IPV4 EIGRP Routing, need to change the EIGRP AS number from 1 to 10 since DSW1 & DSW2 is configured to be in EIGRP AS number 10.
Ticket 10 : VLAN Access Map
Instructions
The main screen consists of two parts; the Main scenario and the Topology tabs. The main scenario describes TSHOOT.com test bed. The Topology tabs allow you to display the appropriate and select the trouble ticket.
To complete the item, you will first need to familiarize yourself with the TSHOOT.com test bed by clicking on the master scenario first and then the topologies tabs. Once you are familiar with the test bed and the topologies, you should start evaluating the trouble ticket. You will be presented with a Trouble Ticket scenario that will describe the fault condition. You will need to determine on which device the fault condition is located, to which technology the fault condition is related, and the solution to each trouble ticket. This will be done by answering three questions.
Ticket Selection
To begin, click on the Ticket on the Topology tabs.
Please note. Some of the questions will require you to use the scroll bar to see all options.
Fault Isolation
Read the ticket scenario to understand the fault condition.
Open the appropriate topology, based upon the ticket scenario.
Open the console of the desired device by clicking on that device in the topology, based upon your troubleshooting methodology.
Use the supported show, ping and trace commands to begin your fault isolation process.
Move to other devices as need by clicking on those devices within the topology.
Fault Identification
The trouble ticket will include three questions that you will need to answer:
1. Which device contains the fault
2. Which technology the fault condition is related to
3. What is the solution to the issue
To advance to the next question within the ticket click on "Next Question".
When you click "DONE", the trouble ticket will turn RED and will no longer be accessible.
You may also use the "Previous Question" button to review questions within that specific ticket.
To complete a trouble ticket, answer all three questions and click "DONE". This will store your response to the questions. Do not click on "DONE" unless you have answered all questions within the ticket.
Item Completion
Click the NEXT button on the bottom of the screen once a ticket is RED. This action moves you to the next item.
Topology Overview (Actual Troubleshooting lab design is for below network design) Client Should have IP 10.2.1.3 EIGRP 100 is running between switch DSW1 & DSW2 OSPF (Process ID 1) is running between R1, R2, R3, R4 Network of OSPF is redistributed in EIGRP BGP 65001 is configured on R1 with Webserver cloud AS 65002 HSRP is running between DSW1 & DSW2 Switches The company has created the test bed shown in the layer 2 and layer 3 topology exhibits.
This network consists of four routers, two layer 3 switches and two layer 2 switches.
In the IPv4 layer 3 topology, R1, R2, R3, and R4 are running OSPF with an OSPF process number 1.
DSW1, DSW2 and R4 are running EIGRP with an AS of 10. Redistribution is enabled where necessary.
R1 is running a BGP AS with a number of 65001. This AS has an eBGP connection to AS 65002 in the ISP's network. Because the company's address space is in the private range.
R1 is also providing NAT translations between the inside (10.1.0.0/16 & 10.2.0.0/16) networks and outside (209.65.0.0/24) network.
ASW1 and ASW2 are layer 2 switches.
NTP is enabled on all devices with 209.65.200.226 serving as the master clock source.
The client workstations receive their IP address and default gateway via R4's DHCP server.
The default gateway address of 10.2.1.254 is the IP address of HSRP group 10 which is running on DSW1 and DSW2.
In the IPv6 layer 3 topology R1, R2, and R3 are running OSPFv3 with an OSPF process number
6.
DSW1, DSW2 and R4 are running RIPng process name RIP_ZONE.
The two IPv6 routing domains, OSPF 6 and RIPng are connected via GRE tunnel running over the underlying IPv4 OSPF domain. Redistrution is enabled where necessary.
Recently the implementation group has been using the test bed to do a 'proof-of-concept' on several implementations. This involved changing the configuration on one or more of the devices.
You will be presented with a series of trouble tickets related to issues introduced during these configurations.
Note: Although trouble tickets have many similar fault indications, each ticket has its own issue and solution.
Each ticket has 3 sub questions that need to be answered & topology remains same.
Question-1 Fault is found on which device,
Question-2 Fault condition is related to,
Question-3 What exact problem is seen & what needs to be done for solution
Client 1 is unable to ping IP 209.65.200.241
Solution
Steps need to follow as below:-
1. When we check on client 1 & Client 2 desktop we are not receiving DHCP address from R4 ipconfig ----- Client will be receiving IP address 10.2.1.3
2. From Client PC we can ping 10.2.1.254....
3. But IP 10.2.1.3 is not able to ping from R4, R3, R2, R1
4. Change required: On DSW1, VALN ACL, Need to delete the VLAN access-map test1 whose action is to drop access-list 10; specifically 10.2.1.3
NEW QUESTION: 4
Which action can be taken on a multiaccess segment with OSPF speakers to reduce the performance impact during widespread convergence events?
A. Ensure that the elected DR or BDR router can support high-volume convergence events.
B. Verify that fewer than 50 OSPF speakers are on the segment.
C. Enable LSA throttling in the core to slow link state advertisement updates during times of network instability.
D. Separate the network into multiple areas for each new multiaccess segment.
Answer: C
Explanation:
"It is worth noting that three most important timers to tune network for sub-second convergence are the failure detection delay, initial LSA generation delay and initial SPF delay. All other timers, such as hold and maximum time serve the purpose of stabilizing network, and affect convergence in "worst-case" unstable network scenarios." More info on LSA throttling:
https://www.cisco.com/c/en/us/td/docs/ios/12_0s/feature/guide/fsolsath.html
"Benefits of OSPF LSA Throttling Prior to the OSPF LSA Throttling feature, LSA generation was rate-limited for 5 seconds. That meant that changes in an LSA could not be propagated in milliseconds, so the OSPF network could not achieve millisecond convergence. The OSPF LSA Throttling feature is enabled by default and allows faster OSPF convergence (in milliseconds).
This feature can be customized. One command controls the generation (sending) of LSAs and another command controls the receiving interval. This feature also provides a dynamic mechanism to slow down the frequency of LSA updates in OSPF during times of network instability."
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