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Juniper JN0-364 Exam Syllabus Topics:

SectionObjectives
Service Provider Architecture & Junos Fundamentals- Junos OS routing fundamentals
  • 1. Routing table and forwarding concepts
    • 2. Junos CLI and configuration hierarchy
      - Service provider network design basics
      • 1. Scalability considerations
        • 2. Core, edge, and access architecture
          OSPF and IS-IS Routing Protocols- OSPF configuration and troubleshooting
          • 1. Adjacency and neighbor states
            • 2. Areas and LSAs
              - IS-IS operation in service provider networks
              • 1. Levels and routing hierarchy
                • 2. LSP and SPF calculation
                  MPLS and Service Provider Technologies- MPLS fundamentals
                  • 1. LDP operations
                    • 2. Label switching and forwarding
                      - VPN services
                      • 1. Layer 3 VPN concepts
                        • 2. Layer 2 VPN overview
                          BGP and Routing Policy- BGP fundamentals
                          • 1. Attributes and path selection
                            • 2. eBGP and iBGP operations
                              - Routing policy control
                              • 1. Route filtering and manipulation
                                • 2. Import/export policies
                                  Troubleshooting and Operations- Network troubleshooting methodology
                                  • 1. Junos operational commands
                                    • 2. Protocol verification tools
                                      - Performance and monitoring
                                      • 1. System logging and alarms
                                        • 2. Traffic analysis basics

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                                          Juniper Service Provider Routing and Switching, Specialist (JNCIS-SP) Sample Questions (Q71-Q76):

                                          NEW QUESTION # 71
                                          You are adding an IPv6 configuration to an Interface on a Junos device. In this scenario, which statement is correct?

                                          Answer: C

                                          Explanation:
                                          IPv6 link-local addresses are automatically generated for each interface and have a prefix of fe80::/10. The interface's MAC address is typically used as part of the process to create the Interface Identifier (IID) in the link-local address, following the EUI-64 format.


                                          NEW QUESTION # 72
                                          Which two statements about graceful restart are correct? (Choose two.)

                                          Answer: A,B

                                          Explanation:
                                          Graceful Restart (GR)is a high-availability mechanism designed to minimize the impact of a routing protocol process (rpd) restart or a Routing Engine (RE) switchover. It allows a router to continue forwarding traffic while the control plane is recovering, provided that the data plane (Packet Forwarding Engine) remains intact.
                                          According to Juniper Networks documentation, Graceful Restart operates in two distinct roles:
                                          * Restarting Mode:This is the role of the router that is actually undergoing the restart. In Junos OS, this mode isnot enabled by default (Option A). An administrator must explicitly configure graceful-restart under the [edit routing-options] hierarchy to allow the router to signal its neighbors that it is attempting a graceful recovery.
                                          * Helper Mode:This is the role of the neighboring routers. When a neighbor sees a router restart, if it is in "helper mode," it will continue to forward traffic toward the restarting router and will not flush the associated routes from its forwarding table for a specified period. In Junos,helper mode is enabled by default (Option B)for most protocols (OSPF, BGP, IS-IS). This means that even if you haven't configured GR on your own router, it will automatically assist its neighbors if they perform a graceful restart.
                                          Why other options are incorrect:
                                          * Option C:WhileGRES (Graceful Routing Engine Switchover)is often usedwithGraceful Restart to handle hardware-level RE failures, they are independent features. GR can function during a simple software process restart without dual REs or GRES.
                                          * Option D:Nonstop Bridging (NSB)is a separate high-availability feature for Layer 2 protocols (like STP). While it shares a similar goal, Graceful Restart is specifically a Layer 3 protocol mechanism (Layer 2 does not use "helper" routers in the same way).


                                          NEW QUESTION # 73
                                          Referring to the exhibit, how do you verify the status of the tunnel from R1?

                                          Answer: A

                                          Explanation:
                                          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.


                                          NEW QUESTION # 74
                                          Which configuration selling prohibits a static route from being redistributed by a dynamic routing protocol?

                                          Answer: C

                                          Explanation:
                                          The no-readvertise policy statement is used to prevent a static route from being redistributed into a dynamic routing protocol. This setting ensures that routes that are configured statically are not advertised out via dynamic routing protocols such as OSPF or BGP.


                                          NEW QUESTION # 75
                                          Exhibit:

                                          You have configured IPv4 and IPv6 in your network and all OSPF neighbors are established. You apply the configuration shown in the exhibit. Which statement is true in this scenario?

                                          Answer: B

                                          Explanation:
                                          In a Juniper Networks environment running Junos OS, understanding the interaction between different versions of OSPF is essential for multi-protocol environments.OSPFv2(defined in RFC 2328) is the standard protocol used for routing IPv4 unicast traffic.OSPFv3(defined in RFC 5340) was originally developed to support IPv6 routing. However, OSPFv3 was later extended via RFC 5838 to support multiple address families (AF), allowing it to carry IPv4 unicast, IPv4 multicast, and other address types within a single OSPF instance.
                                          According to Juniper technical documentation, Junos OS implements this multi-AF support in OSPFv3 through the use ofrealms. When the realm ipv4-unicast statement is configured under the [edit protocols ospf3] hierarchy, the OSPFv3 process becomes capable of calculating and advertising IPv4 routes.
                                          In the provided exhibit, routerR2has a dual-protocol configuration. First, it is running standard OSPFv2, with the ge-0/0/1.0 interface (which is directly connected to the 172.16.2.0/24 network) participating in Area 0.
                                          This ensures that the prefix is advertised as a standard IPv4 LSA to its neighbor,R1. Second, R2 is running OSPFv3 with the realm ipv4-unicast specifically enabled on that same ge-0/0/1.0 interface. Because of this realm, OSPFv3 also treats the 172.16.2.0/24 prefix as a reachable IPv4 destination and advertises it to R1 as an OSPFv3 IPv4-unicast LSA.
                                          As a result, whenR1(which is also running both protocols) receives these routing updates, it will see the same destination prefix advertised by two different protocols. Its routing table (inet.0) will contain one entry learned from the OSPFv2 process and a second, separate entry learned from the OSPFv3 process. While the Junos Routing Engine will ultimately select one as the "active" route based on route preference (both protocols have a default preference of 10), both entries will technically exist within the Routing Information Base (RIB). This confirms that statementBis the correct description of the operational state of the network.
                                          =========


                                          NEW QUESTION # 76
                                          ......

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