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JN0-664 PDF Questions [2025] -Get Excellent Scores
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The Service Provider, Professional (JNCIP-SP) JN0-664 certification is a valuable credential earned by individuals to validate their skills and competence to perform certain job tasks. Your Service Provider, Professional (JNCIP-SP) JN0-664 certification is usually displayed as proof that you’ve been trained, educated, and prepared to meet the specific requirement for your professional role. The Service Provider, Professional (JNCIP-SP) JN0-664 Certification enables you to move ahead in your career later.
Juniper JN0-664 certification is ideal for network engineers and network administrators who wish to specialize in service provider networking. Service Provider, Professional (JNCIP-SP) certification validates the skills and knowledge of the candidates in configuring and troubleshooting Junos-based service provider networks. Service Provider, Professional (JNCIP-SP) certification is recognized worldwide and opens doors to various job opportunities in the field of service provider networking. The JN0-664 Certification also serves as a stepping stone for candidates who wish to pursue the Juniper Networks Certified Internet Expert (JNCIE-SP) certification.
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Juniper JN0-664 Exam is designed to test the knowledge and skills of service provider professionals who work with Juniper Networks’ technologies. Service Provider, Professional (JNCIP-SP) certification validates the understanding of service provider routing and switching technologies and their related platform configuration and troubleshooting skills.
Juniper Service Provider, Professional (JNCIP-SP) Sample Questions (Q52-Q57):
NEW QUESTION # 52
Which two EVPN route types are used to advertise a multihomed Ethernet segment? (Choose two )
- A. Type 4
- B. Type 1
- C. Type 2
- D. Type 3
Answer: A,B
Explanation:
EVPN is a solution that provides Ethernet multipoint services over MPLS networks. EVPN uses BGP to distribute endpoint provisioning information and set up pseudowires between PE devices. EVPN uses different route types to convey different information in the control plane. The following are the main EVPN route types:
Type 1 - Ethernet Auto-Discovery Route: This route type is used for network-wide messaging and discovery of other PE devices that are part of the same EVPN instance. It also carries information about the redundancy mode and load balancing algorithm of the PE devices.
Type 2 - MAC/IP Advertisement Route: This route type is used for MAC and IP address learning and advertisement between PE devices. It also carries information about the Ethernet segment identifier (ESI) and the label for forwarding traffic to the MAC or IP address.
Type 3 - Inclusive Multicast Ethernet Tag Route: This route type is used for broadcast, unknown unicast, and multicast (BUM) traffic forwarding. It also carries information about the multicast group and the label for forwarding BUM traffic.
Type 4 - Ethernet Segment Route: This route type is used for multihoming scenarios, where a CE device is connected to more than one PE device. It also carries information about the ESI and the designated forwarder (DF) election process.
NEW QUESTION # 53
Which two statements are correct about reflecting inet-vpn unicast prefixes in BGP route reflection? (Choose two.)
- A. Clients add their originator ID when advertising routes to their route reflector
- B. Route reflectors do not change any existing BGP attributes by default when advertising routes.
- C. A BGP peer does not require any configuration changes to become a route reflector client.
- D. Route reflectors add their cluster ID to the AS path when readvertising client routes.
Answer: B,C
Explanation:
Route reflection is a BGP feature that allows a router to reflect routes learned from one IBGP peer to another IBGP peer, without requiring a full-mesh IBGP topology. Route reflectors do not change any existing BGP attributes by default when advertising routes, unless explicitly configured to do so. A BGP peer does not require any configuration changes to become a route reflector client, only the route reflector needs to be configured with the client parameter under [edit protocols bgp group group-name neighbor neighbor-address] hierarchy level.
NEW QUESTION # 54
You have an L2VPN connecting two CEs across a provider network that runs OSPF. You have OSPF configured on both CEs.
Which two statements are correct in this scenario? (Choose two.)
- A. OSPF neighborship is formed between the two CEs.
- B. OSPF neighborship is formed between the CEs and PEs.
- C. The CE and PE OSPF areas must match.
- D. The CE and PE OSPF areas can be different.
Answer: A,D
Explanation:
In an L2VPN scenario, the provider network connects two customer edge (CE) devices across a Layer 2 virtual private network. Let's analyze how OSPF operates in this setup.
1. **OSPF Neighborship in L2VPN**:
- An L2VPN provides a Layer 2 connection between two sites, making it transparent to Layer 3 protocols like OSPF. This means the CEs can form OSPF adjacencies directly with each other as if they were on the same local network.
2. **OSPF Configuration on CEs and PEs**:
- **Statement A: OSPF neighborship is formed between the CEs and PEs**:
- Incorrect. In an L2VPN, the provider's network is transparent to the OSPF running on the CEs. OSPF neighborship forms directly between the CEs, not between the CEs and PEs.
- **Statement B: The CE and PE OSPF areas can be different**:
- Correct. Since OSPF adjacencies form directly between the CEs and not between CEs and PEs, the OSPF areas on the CEs and PEs can be different. The provider network acts as a transparent bridge, and OSPF doesn't see the PEs.
- **Statement C: The CE and PE OSPF areas must match**:
- Incorrect. As noted above, because the OSPF neighborship forms directly between the CEs, the OSPF areas on the CEs and PEs do not need to match.
- **Statement D: OSPF neighborship is formed between the two CEs**:
- Correct. The L2VPN makes the connection between the two CEs appear as a direct Layer 2 link, allowing them to form an OSPF adjacency directly.
**Conclusion**:
Given the above analysis, the correct statements are:
**B. The CE and PE OSPF areas can be different.**
**D. OSPF neighborship is formed between the two CEs.**
**References**:
- Juniper Networks Documentation on L2VPNs: [Configuring Layer 2
VPNs](https://www.juniper.net/documentation/en_US/junos/topics/task/configuration/layer-2-vpns-configuring.
- OSPF Configuration Guide: [Junos OS OSPF
Configuration](https://www.juniper.net/documentation/en_US/junos/topics/concept/ospf-routing-overview.html)
NEW QUESTION # 55
R2 is receiving the same route from R1 and R3. You must ensure that you can load balance traffic for that route.
Referring to the exhibit, which configuration change will allow load balancing?
- A. Configure the multipath multiple-as parameter under the global BGP configuration.
- B. Apply the prepend policy as an import policy under group R3.
- C. Apply the prepend policy as an import policy under group R1.
- D. Configure the multipath parameter under the global BGP configuration.
Answer: A
NEW QUESTION # 56
Which statement is correct about IS-IS when it performs the Dijkstra algorithm?
- A. The local router moves its own local tuples into the candidate database
- B. The algorithm will stop processing once the tree database is empty.
- C. Tuples with the lowest cost are moved from the tree database to the LSDB.
- D. When a new neighbor ID in the tree database matches a router ID in the LSDB, the neighbor ID is moved to the candidate database
Answer: A
Explanation:
Explanation
IS-IS is a link-state routing protocol that uses the Dijkstra algorithm to compute the shortest paths between nodes in a network. The Dijkstra algorithm maintains three data structures: a tree database, a candidate database, and a link-state database (LSDB). The tree database contains the nodes that have been visited and their shortest distances from the source node. The candidate database contains the nodes that have not been visited yet and their tentative distances from the source node. The LSDB contains the topology information of the network, such as the links and their costs.
The Dijkstra algorithm works as follows:
* The local router moves its own local tuples into the tree database. A tuple consists of a node ID, a distance, and a parent node ID. The local router's tuple has a distance of zero and no parent node.
* The local router moves its neighbors' tuples into the candidate database. The neighbors' tuples have distances equal to the costs of the links to them and parent node IDs equal to the local router's node ID.
* The local router selects the tuple with the lowest distance from the candidate database and moves it to the tree database. This tuple becomes the current node.
* The local router updates the distances of the current node's neighbors in the candidate database by adding the current node's distance to the link costs. If a shorter distance is found, the parent node ID is also updated.
* The algorithm repeats steps 3 and 4 until either the destination node is reached or the candidate database is empty.
NEW QUESTION # 57
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