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| Section | Weight | Objectives |
|---|---|---|
| Topic 1: Border Gateway Protocol (BGP) | 20-25% | - Configuration and troubleshooting - Path selection and attributes - IBGP and EBGP - Policy and route filtering - Basic operation and message types |
| Topic 2: High Availability | 5-8% | - NSR and GRES concepts - Nonstop active routing - Graceful restart |
| Topic 3: Layer 2 Bridging and VLANs | 8-12% | - Service provider switching features - Bridging concepts - VLANs and trunking |
| Topic 4: Protocol-Independent Routing | 10-15% | - Filter-based forwarding - Martian addresses - Load balancing - Routing instances and RIB groups - Static, aggregate, and generated routes |
| Topic 5: Open Shortest Path First (OSPF) | 15-20% | - Configuration and troubleshooting - LSA types and operation - Areas and router types - Link-state database |
| Topic 6: Multiprotocol Label Switching (MPLS) | 12-18% | - Labels and LIB - Segment routing basics - Terminology and forwarding - LDP and RSVP - Configuration and monitoring |
| Topic 7: Tunnels | 5-8% | - Tunnel configuration and usage - GRE and IP-IP tunnels |
| Topic 8: Intermediate System to Intermediate System (IS-IS) | 10-15% | - Metrics and wide metrics - Adjacencies and levels - PDUs and TLVs - Configuration and monitoring |
| Topic 9: Spanning Tree Protocols | 8-12% | - Configuration and convergence - BPDU and protection features - Port roles and states - STP, RSTP, MSTP, VSTP |
| Topic 10: IPv6 | 8-12% | - Autoconfiguration - OSPFv3 and BGP for IPv6 - Static and dynamic routing - Address types and format |
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NEW QUESTION # 159
Which two events cause a static route to be removed from a routing table? (Choose two.)
Answer: B,D
Explanation:
If the outbound interface associated with a static route becomes unavailable, the router removes the route from the routing table because the next-hop path is no longer reachable.
A static route is also removed when it is manually deleted from the configuration, after which the router withdraws it from the routing table.
NEW QUESTION # 160
Which IS-IS adjacency state indicates that hello packets have been exchanged but the adjacency is not yet fully established?
Answer: D
Explanation:
In theIS-IS (Intermediate System to Intermediate System)protocol, the process of forming an adjacency between two neighbors follows a specific sequence of states. While OSPF uses states like "Init," "Two-Way," and "Full," IS-IS uses a slightly different nomenclature within its state machine.
According to Juniper Networks technical documentation, when a router first sends anIS-IS Hello (IIH) PDU and receives one back from a neighbor, but has not yet confirmed that the neighbor "sees" it back, the adjacency enters theInitializingstate. Specifically, on a point-to-point link, the state transitions fromDownto Initializingas soon as the first PDU is received. On a broadcast network (like Ethernet), the Initializing state indicates that the local router has received a Hello PDU from the neighbor, but the local router's own System ID is not yet listed in the neighbor's list of "seen" neighbors (the neighbor's Hello PDU does not yet contain the local router's MAC address).
The adjacency only moves to theUpstate (Option C) once bi-directional communication is confirmed- meaning both routers have seen each other's System IDs in the incoming Hello PDUs.
Why other options are incorrect:
* Loading (Option A):This is an OSPF state, not an IS-IS state. In IS-IS, database synchronization happens after the adjacency is Up.
* Two-Way (Option D):While functionally similar to the state IS-IS is achieving, "Two-Way" is the specific terminology for OSPF. In IS-IS, the intermediate step between knowing a neighbor exists and having a fully functional adjacency is strictly calledInitializing.
NEW QUESTION # 161
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: C
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.
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NEW QUESTION # 162
You want to share routes between two routing instances that you have configured? What are two ways to accomplish this task? (Choose two.)
Answer: A,B
Explanation:
Static route with a next-hop of next-table pointing to the appropriate routing table which contains more accurate information rib-groups to mirror routing information from one route-table to another. However, in many cases, in order to make this work, interface-routes also need to be mirrored. RIB Group policy can be used to constrain the routing information instance-import and instance-export statements configured within the individual routing-instances to leak routes from one table to another. Again, policy can be used here to constrain the routing information. This method is more straightforward than the rib-group method A final approach is to use physical interfaces or logical- tunnels to stitch routing-instances and use a routing protocol or static routes across this connection between the two routing-instances.
To share routes between two routing instances on a Junos device, you can configure an instance import policy in one or both instances to import routes from the other instance. Alternatively, a RIB (Routing Information Base) group can be used to share routes between instances.
NEW QUESTION # 163
What is the default export behavior of IS-IS in the Junos OS?
Answer: C
Explanation:
In Junos OS, IS-IS does not automatically export routes from the routing table into the IS-IS protocol. By default, no routes are advertised into IS-IS unless an explicit export policy is configured to control which prefixes should be advertised.
NEW QUESTION # 164
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