Certification JN0-364 Test Questions - JN0-364 Practice Questions

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Juniper JN0-364 Exam Syllabus Topics:

SectionObjectives
Topic 1: Open Shortest Path First (OSPF)- Identify the concepts, operation, or functionality of OSPF
  • 1. OSPF packet types
  • 2. Link-state advertisement (LSA) packet type
  • 3. Designated router and backup designated router
  • 4. Router ID
  • 5. OSPF area and router types
  • 6. Adjacencies and neighbors
  • 7. Link-state database
- Demonstrate knowledge of how to configure, monitor, or troubleshoot OSPF
  • 1. Interfaces and neighbor
  • 2. Routing policy application
  • 3. Troubleshooting tools
Topic 2: Intermediate System to Intermediate System (IS-IS)- Identify the concepts, operation, or functionality of IS-IS
  • 1. Metrics
  • 2. Levels and areas
  • 3. Designated intermediate system (DIS)
  • 4. IS-IS protocol data units (PDUs)
  • 5. Type, length, values (TLVs)
  • 6. Adjacencies and neighbors
  • 7. Link-state database
- Demonstrate knowledge of how to configure, monitor, or troubleshoot IS-IS
  • 1. Routing policy application
  • 2. Troubleshooting tools
  • 3. Interfaces and adjacencies
Topic 3: Multiprotocol Label Switching (MPLS)- Demonstrate knowledge of how to configure, monitor, or troubleshoot MPLS
  • 1. RSVP-signaled Label-Switched Paths (LSPs)
  • 2. Shortest path segment-routing LSPs
  • 3. MPLS forwarding
  • 4. LDP-signaled Label-Switched Paths (LSPs)
- Identify the concepts, operation, or functionality of MPLS CoS processing on Junos devices
  • 1. RSVP
  • 2. End-to-end packet flow and forwarding
  • 3. MPLS and routing tables
  • 4. MPLS packet header
  • 5. Labels and the label information base
  • 6. MPLS terminology
  • 7. Segment routing with MPLS
  • 8. LDP
Topic 4: Spanning Tree Protocols- Identify the concepts, operation, or functionality of STP
  • 1. MSTP
  • 2. RSTP
  • 3. STP
  • 4. VSTP
- Demonstrate knowledge of how to configure, monitor, or troubleshoot Spanning Tree Protocols
  • 1. MSTP
  • 2. RSTP
  • 3. STP
  • 4. VSTP
Topic 5: Layer 2 Bridging or VLANs- Identify the concepts, operation, or functionality of Layer 2 bridging for the Junos OS
  • 1. Frame processing
  • 2. Provider bridging (Q-in-Q tunneling)
  • 3. Service provider switching platforms
  • 4. Bridging elements and terminology
  • 5. Virtual Switches
- Identify the concepts, benefits, or functionality of VLANs
  • 1. Integrated Routing and Bridging (IRB)
  • 2. Port modes
  • 3. Tagging
- Demonstrate knowledge of how to configure, monitor, or troubleshoot Layer 2 bridging or VLANs
  • 1. Interfaces and ports
  • 2. Provider bridging
  • 3. IRB
  • 4. VLANs
Topic 6: Protocol-Independent Routing- Demonstrate knowledge of how to configure, monitor, or troubleshoot various protocol-independent routing components
  • 1. Load balancing
  • 2. Filter-based forwarding
  • 3. Static, aggregate, and generated routes
- Identify the concepts, operation, or functionality of various protocol-independent routing components
  • 1. Load balancing
  • 2. Routing instances, including routing information base (RIB) (also known as routing table) group
  • 3. Filter-based forwarding
  • 4. Static, aggregate, and generated routes
  • 5. Martian addresses
Topic 7: Border Gateway Protocol (BGP)- Identify the concepts, operation, or functionality of BGP
  • 1. BGP basic operation
  • 2. Route selection process
  • 3. IBGP and EBGP functionality and interaction
  • 4. Attributes
  • 5. BGP message types
  • 6. BGP route reflection and confederations
- Demonstrate knowledge of how to configure, monitor, or troubleshoot BGP
  • 1. Routing policy application
  • 2. Troubleshooting tools
  • 3. Peers and peer groups
Topic 8: IPv6- Demonstrate knowledge of how to configure, monitor, or troubleshoot IPv6
- Identify the concepts, operation, or functionality of IPv6
  • 1. Static routes
  • 2. Dynamic routing - OSPFv3, IS-IS, BGP
  • 3. IPv6 over IPv4 tunneling

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Juniper Service Provider Routing and Switching, Specialist (JNCIS-SP) Sample Questions (Q77-Q82):

NEW QUESTION # 77
Which statement is correct about the FE80::/10 prefix?

Answer: A

Explanation:
The FE80::/10 prefix is reserved for IPv6 link-local addresses. These addresses are auto- configured on all IPv6-enabled interfaces and can be used for communication within the local link (subnet) only.


NEW QUESTION # 78
You are asked to create connections between routing instances on the same Junos device and route between the connected Instances. What are two ways to accomplish this task? (Choose two.)

Answer: C,D

Explanation:
To create connections between routing instances on the same Junos device and route between them, you can use logical tunnel interfaces, which are virtual interfaces that can be used to route traffic between instances without the need for physical connectivity. Additionally, loopback interfaces, which represent the device itself, can be used to route traffic between routing instances as they are always up and can be reached within the device.


NEW QUESTION # 79
You are the administrator for two Junos routers called R1 and R2. These two routers are directly connected to each other. These two routers run IS-IS and BFD. R1 is configured to send BFD packets every 300 milliseconds. R2 is configured to send BFD packets every 400 milliseconds. In this situation, what is the expected outcome?

Answer: D

Explanation:
In the context of Juniper Networks High Availability,Bidirectional Forwarding Detection (BFD)is a lightweight protocol designed to provide fast failure detection for the forwarding path. Unlike the slow "hello" mechanisms found in IGPs like OSPF or IS-IS, BFD can detect link or neighbor failures in sub-second intervals.
According to Juniper Networks technical documentation, BFD operates through a negotiation process. When two routers establish a BFD session, they exchange their locally configuredMinimum Transmit Intervaland Minimum Receive Intervalwithin the BFD control packets. The fundamental rule of BFD negotiation is that the routers must agree on a common timing value that accommodates the slower of the two devices to ensure stability and prevent "false positives" (detecting a failure when none exists simply because one router cannot keep up with the processing speed).
In this scenario, R1 expects to send at 300ms, while R2 is configured for 400ms. During the handshake, R1 informs R2 it is capable of 300ms, but R2 informs R1 it can only support a minimum of 400ms.
Consequently, the routers will negotiate to use theslowest of the two rates (400ms). Specifically, the transmission interval of one router is matched to the receive interval of the other. By choosing the highest common denominator (the slowest rate), the BFD session ensures that both routers have sufficient time to process incoming control packets. This negotiation allows BFD to be highly flexible in heterogeneous environments where different hardware platforms may have varying CPU capabilities for handling rapid heartbeat packets.


NEW QUESTION # 80
Which statement is true about the BGP active state?

Answer: C


NEW QUESTION # 81

In the exhibit, Site A is sending traffic to Site B. R1 adds MPLS label 7166 to direct the traffic to R5. Which two criteria did R1 use to determine which label number to add to the traffic? (Choose two.)

Answer: A,C

Explanation:
In a Juniper Networks MPLS environment, the process by which a router determines how to forward traffic involves both the control plane and the data plane. When R1 (acting as an Ingress Label Edge Router, or LER) receives an IP packet from Site A destined for Site B, it must perform a lookup to decide whether to forward the packet via standard IP routing or via an MPLS Label Switched Path (LSP).
The first criterion R1 uses is thedestination address of the traffic(Option C). Upon receiving the native IP packet, R1 looks up the destination IP in its routing table (typically inet.0). If the destination matches a prefix that is associated with an LSP-such as the loopback address of R5 or a prefix reachable via R5-the router identifies the appropriate Forwarding Equivalence Class (FEC). The FEC essentially groups packets that should be forwarded in the same manner over the same path. Without identifying the destination, the router cannot map the traffic to the correct MPLS tunnel.
The second criterion is thelabel number advertisement received from R2(Option D). MPLS relies on downstream label allocation. In this topology, R2 is the immediate downstream "next hop" for R1 on the path to Site B. For the LSP to be established, R2 must signal a label to R1 using a protocol like LDP (Label Distribution Protocol) or RSVP (Resource Reservation Protocol). This label (in this case, 7166) tells R1: "If you want to send traffic to the destination associated with this LSP, wrap it in this specific label so I know how to process it." R1 does not use the source address (Option A) for standard label mapping, nor does it receive the label directly from R5 (Option B) in a hop-by-hop signaling model; it must use the label provided by its direct neighbor, R2. Therefore, by combining the destination IP (to find the path) and the label provided by the next hop (to encapsulate the packet), R1 successfully directs the traffic through the MPLS core.


NEW QUESTION # 82
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