Service Provider, Professional (JNCIP-SP) Actual Exam & JN0-664 Practice Vce & Service Provider, Professional (JNCIP-SP) Updated Torrent
Service Provider, Professional (JNCIP-SP) Actual Exam & JN0-664 Practice Vce & Service Provider, Professional (JNCIP-SP) Updated Torrent
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To ensure that the JN0-664 dumps PDF format remains up to date, the Juniper JN0-664 questions in it are regularly revised to reflect any modifications to the JN0-664 exam content. This commitment to staying current and aligned with the JN0-664 Exam Topics ensures that candidates receive the Service Provider, Professional (JNCIP-SP) (JN0-664) updated questions.
The JN0-664 Exam consists of 65 multiple-choice questions and is administered over a 120-minute period. Candidates must score at least 65% to pass the exam. The questions are designed to test the candidate's knowledge and understanding of service provider routing technologies, as well as their ability to apply that knowledge in real-world scenarios.
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Juniper JN0-664 exam is a written exam and consists of 65 multiple-choice questions. The candidate has 120 minutes to complete the exam. JN0-664 Exam is available in English and is administered worldwide by Pearson VUE. The passing score for the exam is 65%.
Juniper Service Provider, Professional (JNCIP-SP) Sample Questions (Q19-Q24):
NEW QUESTION # 19
Exhibit
Referring to the exhibit, what do the brackets [ ] in the AS path identify?
- A. They identify that the autonomous system number is incomplete and awaiting more information from the BGP protocol.
- B. They identify that a BGP confederation is being used to ensure that there are no routing loops.
- C. They identify an AS set, which are groups of AS numbers in which the order does not matter
- D. They identify the local AS number associated with the AS path if configured on the router, or if AS path prepending is configured
Answer: C
Explanation:
The brackets [ ] in the AS path identify an AS set, which are groups of AS numbers in which the order does not matter. An AS set is used when BGP aggregates routes from different ASs into a single prefix. For example, if BGP aggregates routes 10.0.0.0/16 and 10.1.0.0/16 from AS 100 and AS 200, respectively, into a single prefix 10.0.0.0/15, then the AS path for this prefix will be [100 200]. An AS set reduces the length of the AS path and prevents routing loops.
NEW QUESTION # 20
Refer to the exhibit.
Click the Exhibit button.
Referring to the exhibit, which two statements are correct regarding the output shown in the exhibit? (Choose two.)
- A. The multicast group is an SSM group.
- B. The multicast traffic is using the RPT.
- C. The multicast traffic is using the SPT.
- D. The multicast group is an ASM group.
Answer: C,D
Explanation:
In the provided exhibit, the output of the `show pim join extensive 232.1.1.1` command is shown. This command provides detailed information about the PIM join state for the specified multicast group (232.1.1.1) on the router R1. To determine the correct statements regarding the multicast traffic, let's analyze the output and the terms involved:
1. **ASM vs. SSM**:
- **ASM (Any-Source Multicast)**: In ASM, receivers are interested in receiving multicast traffic from any source sending to a particular multicast group.
- **SSM (Source-Specific Multicast)**: In SSM, receivers are interested in receiving traffic only from specific sources for a multicast group.
- **Group Address Range**:
- ASM uses the range 224.0.0.0 to 239.255.255.255.
- SSM uses the range 232.0.0.0 to 232.255.255.255.
Since the group address 232.1.1.1 falls within the SSM range (232.0.0.0/8), there might be confusion. However, considering the flags and states in the output, it's evident that the PIM mode and source information are consistent with ASM behavior.
2. **Multicast Trees**:
- **RPT (Rendezvous Point Tree)**: Multicast traffic initially uses the RPT, where the Rendezvous Point (RP) acts as an intermediate point.
- **SPT (Shortest Path Tree)**: After the initial join via RPT, traffic can switch to SPT, which is a direct path from the source to the receiver.
3. **Output Analysis**:
- **Flags**:
- The flags `sparse, rp-tree, wildcard` indicate that the group 232.1.1.1 is currently using RPT. This is typical for ASM, where traffic initially goes through the RP.
- The flags `sparse, spt` indicate that for the source 172.16.1.2, traffic has switched to SPT, meaning it is using the shortest path from the source directly to the receivers.
**Conclusion**:
Based on the analysis:
- **A. The multicast group is an ASM group**: This statement is correct as the configuration and behavior indicate ASM operation.
- **B. The multicast traffic is using the SPT**: This statement is also correct because the flags for the source 172.16.1.2 indicate that the traffic is using the SPT.
Thus, the correct answers are:
**A. The multicast group is an ASM group.**
**B. The multicast traffic is using the SPT.**
**Reference**:
- Juniper Networks PIM Documentation: [PIM Overview](https://www.juniper.net/documentation/en_US/junos/topics/concept/pim-overview.html)
- Junos OS Multicast Routing Configuration Guide: [Multicast Routing Configuration Guide](https://www.juniper.net/documentation/en_US/junos/topics/topic-map/multicast-routing.html)
NEW QUESTION # 21
An interface is configured with a behavior aggregate classifier and a multifield classifier How will the packet be processed when received on this interface?
- A. The packet will be discarded.
- B. The packet will be processed by the MF classifier first, then the BA classifier.
- C. The packet will be forwarded with no classification changes.
- D. The packet will be processed by the BA classifier first, then the MF classifier.
Answer: C
Explanation:
behavior aggregate (BA) classifiers and multifield (MF) classifiers are two types of classifiers that are used to assign packets to a forwarding class and a loss priority based on different criteria. The forwarding class determines the output queue for a packet. The loss priority is used by a scheduler to control packet discard during periods of congestion.
A BA classifier maps packets to a forwarding class and a loss priority based on a fixed-length field in the packet header, such as DSCP, IP precedence, MPLS EXP, or IEEE 802.1p CoS bits. A BA classifier is computationally efficient and suitable for core devices that handle high traffic volumes. A BA classifier is useful if the traffic comes from a trusted source and the CoS value in the packet header is trusted.
An MF classifier maps packets to a forwarding class and a loss priority based on multiple fields in the packet header, such as source address, destination address, protocol type, port number, or VLAN ID. An MF classifier is more flexible and granular than a BA classifier and can match packets based on complex filter rules. An MF classifier is suitable for edge devices that need to classify traffic from untrusted sources or rewrite packet headers.
You can configure both a BA classifier and an MF classifier on an interface. If you do this, the BA classification is performed first and then the MF classification. If the two classification results conflict, the MF classification result overrides the BA classification result.
Based on this information, we can infer the following statements:
The packet will be discarded. This is not correct because the packet will not be discarded by the classifiers unless it matches a filter rule that specifies discard as an action. The classifiers only assign packets to a forwarding class and a loss priority based on their match criteria.
The packet will be processed by the BA classifier first, then the MF classifier. This is correct because if both a BA classifier and an MF classifier are configured on an interface, the BA classification is performed first and then the MF classification. If they conflict, the MF classification result overrides the BA classification result.
The packet will be forwarded with no classification changes. This is not correct because the packet will be classified by both the BA classifier and the MF classifier if they are configured on an interface. The final classification result will determine which output queue and which discard policy will be applied to the packet.
The packet will be processed by the MF classifier first, then the BA classifier. This is not correct because if both a BA classifier and an MF classifier are configured on an interface, the BA classification is performed first and then the MF classification. If they conflict, the MF classification result overrides the BA classification result.
NEW QUESTION # 22
Which origin code is preferred by BGP?
- A. Internal
- B. Incomplete
- C. Null
- D. External
Answer: B
Explanation:
Explanation
BGP uses several attributes to select the best path for a destination prefix. One of these attributes is origin, which indicates how BGP learned about a route. The origin attribute can have one of three values: IGP, EGP, or Incomplete. IGP means that the route was originated by a network or aggregate statement within BGP or by redistribution from an IGP into BGP. EGP means that the route was learned from an external BGP peer (this value is obsolete since BGP version 4). Incomplete means that the route was learned by some other means, such as redistribution from a static route into BGP. BGP prefers routes with lower origin values, so Incomplete is preferred over EGP, which is preferred over IGP.
NEW QUESTION # 23
Exhibit
R4 is directly connected to both RPs (R2 and R3) R4 is currently sending all ,o,ns upstream to R3 but you want all joins to go to R2 instead Referring to the exhibit, which configuration change will solve this issue?
- A. Change the group-range to be more specific on R2 than R3.
- B. Change the bootstrap priority on R2 to be higher than R3
- C. Change the local address on R2 to be higher than R3.
- D. Change the default route in inet.2 on R4 from R3 as the next hop to R2
Answer: A
NEW QUESTION # 24
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