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Exhibit
S Exhibit
LSI1 A AS 65501
ISPB AS 65502
Advertised Prefixes: 172.20.0.0/24 172.20.20.0/24 172.20.21.0/24
N
Advertised Prefixes: 172.20.0.0/24
172.20.1.0/24
Referring to the exhibit, which two statements are correct? (Choose two.)
A. Devices In AS 65512 will prefer ISP B for traffic destined to the 172.20.0.0/24 network.
B. Devices in AS 65512 will prefer ISP B for traffic destined to the 172.20.21.0/24 network.
C. Devices in AS 65512 will prefer ISP A for traffic destined to the 172.20.21.0/24 network.
D. Devices In AS 65512 will prefer ISP A for traffic destined to the 172.20.0.0/24 network.
Antwort: C,D
Begr¨¹ndung:
Local preference is a BGP attribute that dictates which path is preferred when multiple paths to the same destination are available. A higher local preference is preferred over a lower one. Since ISP A (AS 65501) is advertising a local preference of 100 and ISP B (AS 65502) is advertising a local preference of 200 to AS 65512, traffic from devices in AS 65512 will prefer the path via ISP B for all networks that ISP B advertises. However, since ISP A advertises the 172.20.21.0/24 network and ISP B does not, traffic for 172.20.21.0/24 will go through ISP A. For the 172.20.0.0/24 network, which both ISPs advertise, devices in AS 65512 will prefer the path via ISP B due to the higher local preference.
Reference:
Juniper Networks documentation on BGP attributes: BGP Attributes and Policy
53. Frage
Exhibit
Referring to the exhibit, how do you verify the status of the tunnel from R1?
A. Issue the ping 172.20.iii.io source 203.0.113.2 command.
B. Issue the ping 172.20.111.10 source 172.20.110.1 command.
C. Issue the ping 172.20.111.10 source 198.51.100.1 command.
D. Issue the ping 172.20. Ill. 10 command.
Antwort: C
Begr¨¹ndung:
To verify the status of the tunnel from R1, you would issue a ping from the source address that is assigned to R1's end of the tunnel. In the exhibit, we can see that the tunnel interface (gre-0/0/0.0) has the IP address
198.51.100.1 on R1. Therefore, to test the tunnel's status, you should ping the IP address at the other end of the tunnel (which is likely the address on User B's interface or another interface on R2) from R1's tunnel source address.
References:
Juniper Networks documentation on GRE: GRE Interface Configuration
54. Frage
Exhibit
Referring to the exhibit, which statement is true about VRRP?
A. The routers should use different virtual IP addresses for VRRP to function correctly.
B. VRRP communication between the two devices is not functioning correctly.
C. Both routers are in the same state because they have the same VRRP priority.
D. VRRP Is functioning normally in active/active mode.
Antwort: D
Begr¨¹ndung:
The exhibit shows theshow vrrp summaryoutput from two routers, with both routers listing the state of their VRRP group asmaster. VRRP allows for multiple routers to share a virtual IP address and a virtual MAC address, but usually, only one router is the master at any given time while others are in backup state. However, in some configurations, VRRP can operate in an active/active mode where multiple routers handle traffic simultaneously for load sharing. Since both routers show the state asmasterand there is no evidence of misconfiguration in the virtual IP addresses or priority, it indicates that VRRP is likely functioning in an active/active setup.
References:
Juniper documentation on VRRP: Junos OS VRRP Overview
55. Frage
Click the Exhibit button. What does IS-IS/18 mean in the output displayed in the exhibit?
A. These routes are internal Level 2 routes.
B. These routes are external Level 2 routes.
C. These routes are internal Level 1 routes.
D. These routes are external Level 1 routes.
Antwort: A
56. Frage
Which two statements are correct about segment routing? (Choose two.)
A. Segment routing adjacencies require very little resources to maintain.
B. Label assignments can be advertised through LDP updates.
C. Label assignments can be advertised through OSPF updates.
D. There are no segment routing adjacencies to maintain.
Antwort: A,C
Begr¨¹ndung:
Segment routing is a source routing paradigm that allows a source router to define the path that a packet will take through the network by assigning an ordered list of segments-identifiers that specify a forwarding path for the packet through the network. Segment Routing can be implemented over an MPLS architecture or with IPv6 (SRv6).
A . Segment routing does not require a full mesh of adjacencies or state per transit path in the network, which is often the case with conventional MPLS signaling protocols like RSVP-TE. It leverages the existing IGP topology for forwarding without the need to maintain a state for each LSP (Label Switched Path), hence requiring very little resources to maintain.
B . In segment routing, labels (or segments) are distributed via IGP routing protocols like OSPF or IS-IS with extensions to carry segment routing information. These protocols are enhanced with Segment Routing extensions to distribute labels. For example, OSPFv2 is extended with Segment Routing extensions defined in RFC 8665.
C . This statement is not entirely correct. While it is true that segment routing does not require the maintenance of a state for each path (LSP), the concept of "segment routing adjacencies" is a mischaracterization. Segment routing leverages the existing adjacencies formed by the underlying IGP.
D . Label assignments in segment routing are not advertised through LDP (Label Distribution Protocol) updates. Segment routing does away with LDP and instead uses IGP extensions to distribute labels.
Reference:
Juniper Networks documentation on Segment Routing: Segment Routing Overview Juniper Networks technical documentation providing guidance on configuring OSPF with Segment Routing extensions.
IETF RFC 8665: OSPF Extension for Segment Routing.
57. Frage
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