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Juniper JN0-364 Exam Syllabus Topics:

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

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Juniper Service Provider Routing and Switching, Specialist (JNCIS-SP) Sample Questions (Q92-Q97):

NEW QUESTION # 92
A service provider is onboarding a new enterprise customer that operates multiple branch offices, each with its own set of VLANs. The customer requires transparent Layer 2 connectivity between sites while maintaining separation of internal VLANs. The provider must also ensure that customer VLAN identifiers do not conflict with other customers on the shared infrastructure. Which solution would provide the desired results?

Answer: D

Explanation:
In a service provider environment,Q-in-Q tunneling(also known as 802.1ad or double-tagging) is the standard solution for transporting multiple customer VLANs over a shared provider backbone while maintaining total separation.
According to Juniper Networks documentation, Q-in-Q works by adding a second 802.1Q tag (theService Provider tagor S-tag) to the customer's already tagged frames (theCustomer tagor C-tag). This creates a
"tunnel" at Layer 2. This solution specifically addresses all the customer's requirements:
* Transparent Layer 2 Connectivity:Because the provider simply encapsulates the customer's frames, the customer's internal BPDU traffic (like Spanning Tree) and VLAN tags are preserved and delivered transparently to the remote site.
* Separation of Internal VLANs:The customer can run their own internal VLAN IDs (1-4094) without the provider needing to know or manage them.
* Conflict Avoidance:Different customers on the same provider infrastructure are assigned unique S- tags. Even if two different customers both use "VLAN 10" internally, they remain isolated because their traffic is encapsulated in different provider S-tags.
Why other options are incorrect:
* Layer 3 VPN (Option B):While MPLS L3VPNs are common, they provide Layer 3 (IP) connectivity, not the "transparent Layer 2" connectivity requested.
* GRE Tunnels (Option C):GRE is a Layer 3 encapsulation and does not natively provide the transparent VLAN bridging required for a multi-site Layer 2 service.
* NAT/Firewall (Option D):These are security and address-translation services for internet access and do not facilitate site-to-site Layer 2 bridging.


NEW QUESTION # 93
For two or more switches to participate in the same MSTP region, which parameter must match?

Answer: A

Explanation:
For switches to participate in the same MSTP region, the MST region configuration must match across the devices. One of the required matching parameters is the region name, which identifies the MSTP region and ensures the switches treat each other as part of the same spanning-tree region.


NEW QUESTION # 94
In IS-IS, what would you use to control which external routes are installed in the routing table?

Answer: A

Explanation:
An import policy is used to control which routes learned from a routing protocol are accepted into the routing table. In IS-IS, applying an import policy allows the router to filter or modify external routes before they are installed in the routing table.


NEW QUESTION # 95
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: A,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 # 96
You are asked to add next-hop redundancy using VRRP for an IPv6 enabled service. The configured primary router must always be active when available, and the servers connected to the network must be able to ping their gateway. Which VRRP element is required to accomplish this requirement?

Answer: A

Explanation:
InVirtual Router Redundancy Protocol (VRRP), the primary goal is to provide a highly available default gateway for end hosts. However, there is a specific operational behavior in the VRRP standard (RFC 3768
/RFC 5798) regarding how the "Virtual Router" responds to traffic destined for its own Virtual IP (VIP).
According to Juniper Networks documentation, by default, a VRRP router that is in the Master state will only respond to packets destined for the VIP if that router is theIP Address Owner(meaning its physical interface IP matches the VIP). If the router is a "non-owner" (a common configuration in many networks), it will forward traffic on behalf of the VIP but will not respond to management traffic, such asICMP Echo Requests (Pings), directed at the VIP itself.
To satisfy the requirement that "servers connected to the network must be able to ping their gateway," the accept-data (Option D)parameter must be configured. In Junos OS, the accept-data statement allows the VRRP Master to respond to traffic destined for the virtual IP address even if it is not the address owner. This includes responding to Pings and allowing other management connections like SSH or Telnet to the VIP.
Regarding the other options:
* Preempt (Option B):While preempt is often used to ensure the primary router regains control, in Junos, a router with the highest priority (255) defaults to preemptive behavior, and accept-data is specifically what solves the "pinging the gateway" requirement.
* Track (Option A):Tracking is used for failover logic but doesn't affect the ability to ping the VIP.
* Static ARP (Option C):This is unnecessary as VRRP uses a virtual MAC address to ensure hosts can resolve the VIP via standard NDP (for IPv6) or ARP (for IPv4).


NEW QUESTION # 97
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