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Juniper JN0-364 Exam Syllabus Topics:

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

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Juniper Service Provider Routing and Switching, Specialist (JNCIS-SP) Sample Questions (Q53-Q58):

NEW QUESTION # 53

Referring to the exhibit, which protocol would automatically create a full mesh of label-switched paths between MPLS-enabled routers?

Answer: B

Explanation:
In Juniper Networks Junos OS, theLabel Distribution Protocol (LDP)is specifically designed to automate the creation of Label Switched Paths (LSPs) based on the information provided by the underlying Interior Gateway Protocol (IGP), such as OSPF or IS-IS. When LDP is enabled on a set of interfaces within an OSPF area (as shown in the exhibit with Area 0.0.0.0), it automatically discovers neighbors and exchanges label mappings for all known unicast routes in the routing table.
The defining characteristic of LDP in this context is its "topology-driven" nature. Unlike RSVP (Resource Reservation Protocol), which typically requires the manual configuration of each LSP ingress point and destination, LDP follows the IGP's shortest path tree to automatically build afull meshof LSPs between all participating routers. This means that every Provider Edge (PE) and Provider (P) router in the exhibit-PE1, PE2, PE3, P1, P2, and P3-will establish label-switched connectivity to every other router without the administrator having to define individual tunnels.
LDP accomplishes this through a downstream-unsolicited label distribution mode by default in Junos. Each router assigns a local label for its loopback address and other prefixes and advertises these to its neighbors.
Because every router is performing this action for every reachable prefix in the OSPF domain, a complete fabric of label-switched paths is formed. While RSVP is more robust for traffic engineering and bandwidth reservation, LDP is the preferred protocol for creating a simple, scalable full mesh of LSPs for applications like Layer 3 VPNs or internal BGP tunneling where complex path manipulation is not required. BFD is a failure detection protocol, and BGP is used for service signaling, making LDP the only correct choice for automatic mesh creation.


NEW QUESTION # 54
Referring to the exhibit, you have an established RSVP LSP between R1 and R4 when you experience a link failure between R2 and R3.
Which two statements are correct? (Choose two.)

Answer: A,B

Explanation:
Upon a link failure in an RSVP-signaled LSP, the router upstream of the failure (R2) sends a PathTear message upstream to the ingress router (R1), and the router downstream of the failure (R3) sends a ResvTear message downstream to the egress router (R4). These messages signal the failure and initiate tear down of the LSP state in the respective directions.


NEW QUESTION # 55
Referring to the exhibit. You are asked to configure OSPF between routers R1 and R2 using IPv6 addresses. Which two tasks will accomplish your objective? (Choose two.)

Answer: B,D

Explanation:
To configure OSPFv3 (the version of OSPF that supports IPv6), you would use the set protocols ospf3 command with the appropriate area and interface. OSPFv3 requires a 32-bit router ID just like OSPFv2, which is typically an IPv4 address. OSPF does not use a 128-bit router ID, so answer D is incorrect.


NEW QUESTION # 56
You are designing an MPLS network and want to ensure that traffic traverses an LSP between PE routers that follow an explicit path through the core.
Which protocol would accomplish this task?

Answer: D

Explanation:
RSVP-TE is used to signal MPLS traffic-engineered LSPs and supports explicit path configuration. This allows you to define the exact sequence of core hops the LSP must follow between PE routers, ensuring traffic traverses the desired path rather than simply following the IGP shortest path.


NEW QUESTION # 57
Referring to the exhibit, which two statements are correct? (Choose two.)

Answer: B,D

Explanation:
In the given exhibit, interface ge-0/0/0 is configured to accept VLANs 101-120 and ge-0/0/1 is configured with flexible VLAN tagging, which means it can tag traffic with any VLAN ID specified.
However, only VLAN 200 is explicitly mentioned for ge-0/0/1. A. Traffic tagged with VLAN 101 will pass through ge-0/0/0 and will egress on ge-0/0/1 with the same VLAN tag, because the VLAN ID is within the allowed range on both interfaces. B. VLAN 100 is not specified in the allowed VLAN range for ge-0/0/0 (which is 101-120), nor is it specified under ge-0/0/1. Therefore, it will be dropped.


NEW QUESTION # 58
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