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HPE Campus Access Switching Expert Written Exam Sample Questions (Q62-Q67):
NEW QUESTION # 62
With the configuration oftwo CX 8325 switches in the VSX cluster, how would you prepare a link- aggregation for a 7000 gateway for a zero-touch provision to support protocol-based port redundancy?
- A.

- B.

- C.

- D.

Answer: D
Explanation:
The goal is to configure a Link Aggregation Group (LAG) on a VSX cluster (pair of CX 8325 switches) that connects to an Aruba 7000 series gateway undergoing Zero Touch Provisioning (ZTP). The LAG needs to support "protocol-based port redundancy" (LACP) and allow connectivity during ZTP.
* VSX Requirement:Since the LAG connects to two separate physical switches operating as a VSX pair, the LAG must be configured as a Multi-Chassis LAG (MC-LAG) on the switches. This allows the gateway to form a single LAG across both upstream devices. The command multi-chassis under the interface lag <id> context enables this.
* Protocol Redundancy Requirement:"Protocol-based port redundancy" indicates that Link Aggregation Control Protocol (LACP) should be used to dynamically negotiate and manage the LAG bundle between the switches and the gateway. The command lacp mode active enables LACP in active negotiation mode.
* ZTP Requirement:During ZTP, the gateway might not have its full configuration, including LACP settings, enabled immediately. To ensure the gateway can establish basic IP connectivity for ZTP (e.g., reach Activate/Central via DHCP/DNS), the switch ports should allow traffic even if LACP negotiation hasn't completed. The lacp fallback feature enables this, allowing individual LAG member ports to become active if LACP PDUs are not received from the peer.
* Analyzing the Options:
* A)Configures lacp mode active and lacp fallback butlacksthe multi-chassis command required for VSX.
* B)Correctly configures the LAG as multi-chassis, enables lacp mode active, and enables lacp fallback. This meets all requirements.
* C)Configures multi-chassis but uses potentially older or less standard syntax lacp enable and lacp fail-over instead of lacp mode active and lacp fallback.
* D)Lacks the multi-chassis command and uses potentially older/less standard syntax.
* Conclusion:Option B provides the complete and correct configuration using standard AOS-CX syntax to create an MC-LAG on the VSX pair with LACP enabled for redundancy and LACP fallback enabled to support gateway connectivity during ZTP.
References:AOS-CX VSX Guide (MC-LAG configuration), AOS-CX Link Aggregation Guide (LACP, LACP Fallback commands and usage), ArubaGateway ZTP documentation. This relates to "Network Resiliency and virtualization" (8%), "Switching" (19%), and "Connectivity" (9%) objectives.
NEW QUESTION # 63
Refer to the exhibit.


When enabling DHCPv4-snooping on an AOS-CX access switch, which change has to be made to be able to get an IP from the DHCP-servers?
- A.

- B.

- C.

- D. dhcpv4-snooping trust interface 1/1/51-1/1/52
Answer: A
Explanation:
To allow clients in VLAN 120 to obtain IP addresses, the switch must trust the interfaces connected to the upstream DHCP servers. The correct configuration is:
interface 1/1/51-1/1/52
dhcpv4-snooping trust
This ensures DHCP offers and acknowledgments from the servers on those ports are not dropped by DHCP snooping.
NEW QUESTION # 64
the administrator of a largo company noticed thatthere are some problems with UCC sessions on a wired network. Some employees complain about dropped calls and poor quality. The administrator wants to monitor, jitter on AOS-CX switches with iP SLA. but notices results spiking to 100% What should the administrator check first to correct monitoring to run as desired?
- A. number of NAE agents
- B. CoPP settings
- C. source IP and source port combination
- D. memory and processor usage
Answer: D
Explanation:
The administrator observes IP SLA jitter monitoring results spiking to 100% when monitoring UCC sessions.
This indicates either extremely severe network jitter or, more likely, a problem with the IP SLA operation or measurement itself on the AOS-CX switch.
* IP SLA & Jitter:IP SLA measures jitter by analyzing the inter-packet delay variation of probe packets.
Accurate measurements depend on the switch generating and processing these probes consistently.
* Factors Affecting IP SLA Accuracy:
* Switch Resource Contention:If the switch's CPU or memory is heavily utilized, the operating system might not schedule the IP SLA process promptly. This can lead to inconsistent generation or processing of probe packets, causing highly inaccurate measurements, including extreme jitter values like 100%.
* Control Plane Policing (CoPP):IP SLA packets are control plane traffic. If CoPP policies are too restrictive, they might drop or delay IP SLA probes, skewing results.
* Network Path Issues:Actual severe jitter on the network path would also cause high readings, but 100% spikes often suggest measurement error first.
* Troubleshooting Steps:When encountering unexpectedly high or erratic IP SLA results, the first step is often to rule out issues with the monitoring device itself.
* Analysis of Options:
* A. memory and processor usage: Checking the switch's resource utilization is crucial. High CPU
/memory load can directly impact the timing accuracy of IP SLA operations.
* B. source IP and source port combination: Unlikely to cause 100% jitter spikes unless fundamentally misconfigured causing probe failure.
* C. number of NAE agents: NAE agents consume resources, but checking overall CPU/memory (A) is more direct.
* D. CoPP settings: A valid concern, as CoPP affects control plane traffic. However, checking overall system load (A) is typically a primary check before delving into specific policies like CoPP.
* Conclusion:High memory and processor usage (Option A) on the switch running the IP SLA operation is a common cause for inaccurate timing and resulting erroneous jitter measurements. This should be checked first to ensure the monitoring platform itself is functioning correctly.
References:AOS-CX IP SLA Guide, AOS-CX Management and Configuration Guide (Monitoring CPU
/Memory, CoPP). This relates to "Performance Optimization" (6%) and "Troubleshooting" (10%).
NEW QUESTION # 65
Exhibit.
The customer has VSX clusters intwo locations interconnected over an MC-LAG interface.
If active-gateway configuration uses the same virtual IP address and vMAC on each of the VSX nodes, what must you take into consideration0
- A. The configuration would end up in an async setup.
- B. Transit traffic will Increase over the VSX interconnect MC-LAG.
- C. Outbound traffic will be load-balancedover all VSX members for each session.
- D. Each ARP request will result in four responses.
Answer: A
Explanation:
The scenario describes two separate VSX clusters interconnected via MC-LAG, where both clusters are configured to use theexact samevirtual IP address and virtual MAC address for their respective Active Gateway SVIs.
* Active Gateway Scope & Conflict:Active Gateway provides a highly available default gatewaywithina single VSX cluster (L2 domain). The vIP/vMAC combination should be unique within its L2 broadcast domain.
* Interconnecting Clusters with Same vIP/vMAC:When two VSX clusters using the identical Active Gateway vIP/vMAC are interconnected at Layer 2 (even via MC-LAG), this creates a situation where the same active L2 (vMAC) and L3 (vIP) address exists in multiple places within the extended broadcast domain.
* Consequences:This leads to MAC address conflicts and L3 ambiguity. ARP resolution becomes unreliable, potentially causing ARP tables to flap on connected devices. Traffic forwarding becomes unpredictable, as packets destined for the vIP/vMAC might be delivered to the "wrong" cluster. This unstable and unpredictable state is sometimes referred to as an asymmetric or "async" setup.
* Analysis of Options:
* A: ISL traffic might change, but it's a symptom, not the root problem.
* B: Multiple ARP replies would occur, contributing to the confusion.
* C: The configuration results in an "async setup," accurately describing the unstable state caused by duplicate active L2/L3 addresses across the interconnected L2 domain.
* D: Load-balancing happens within a cluster; this setup causes conflict, not predictable load balancing across clusters.
* Conclusion:Reusing the same Active Gateway vIP and vMAC across interconnected VSX clusters is not a valid design and leads to an unstable, asymmetric ("async") environment due to address duplication within the extended L2 domain. Option C best describes this problematic outcome.
References:Aruba VSX Design and Best Practices Guides (Active Gateway uniqueness, Interconnecting VSX clusters). This relates to "Network Resiliency and virtualization" (8%), "Routing" (16%), and
"Troubleshooting" (10%) objectives.
NEW QUESTION # 66
An IT administrator wants to set up an HPE Aruba Networking User Experience Insight (UXI) sensor. During the initiation process, the administrator sees that the color of the LED is orange.
What does the orange LED mean?
- A. The sensor needs multi-rate port but this port is only standard 1G port
- B. The sensor cannot connect to the UXI cloud
- C. The sensor is still booting
- D. This is a G6E UXI sensor and does not have enough PoE power
Answer: B
Explanation:
On an HPE Aruba Networking UXI sensor, an orange LED indicates that the sensor cannot connect to the UXI cloud. This typically points to network connectivity, DNS, or firewall issues blocking communication between the sensor and the cloud service.
NEW QUESTION # 67
......
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