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HP HPE7-A06 Exam Syllabus Topics:

SectionWeightObjectives
Topic 1: Security and Access Control10%- Threat defense and compliance
  • 1. Secure management protocols
    • 2. Access control lists
      - Network security implementation
      • 1. 802.1X authentication and EAP methods
        • 2. Group Based Policy (GBP)
          Topic 2: Switching Technologies9%- Campus switching features
          • 1. VSF and stacking technologies
            • 2. Port security and storm control
              - Layer 2 implementation and troubleshooting
              • 1. Broadcast domains and VLANs
                • 2. Spanning Tree protocols and optimization
                  • 3. Link aggregation and LACP
                    Topic 3: Network Resiliency and Virtualization8%- Network virtualization
                    • 1. Network segmentation
                      • 2. VXLAN and overlay networks
                        - High availability and redundancy
                        • 1. Failover and recovery
                          • 2. Fault tolerance mechanisms
                            Topic 4: Performance Optimization6%- Scalability and capacity planning
                            • 1. Resource utilization
                              • 2. Network design optimization
                                - Traffic management
                                • 1. Congestion control
                                  • 2. QoS and bandwidth allocation
                                    Topic 5: Routing Technologies16%- IP routing design and implementation
                                    • 1. OSPF, BGP, and EVPN configuration
                                      • 2. Static and dynamic routing protocols
                                        - Routing troubleshooting
                                        • 1. Path selection and performance
                                          • 2. Route redistribution and filtering
                                            Topic 6: Authentication and Authorization9%- Identity-based networking
                                            • 1. Role-based access control
                                              • 2. User and device authentication
                                                - AAA framework design
                                                • 1. RADIUS and TACACS+ integration
                                                  • 2. ClearPass Policy Manager integration
                                                    Topic 7: Advanced Troubleshooting10%- Performance and connectivity issues
                                                    • 1. Error isolation and remediation
                                                      • 2. Latency and packet loss resolution
                                                        - Campus network diagnostics
                                                        • 1. Packet capture and analysis
                                                          • 2. Log and event interpretation

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                                                            HPE Campus Access Switching Expert Written Exam Sample Questions (Q36-Q41):

                                                            NEW QUESTION # 36
                                                            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?

                                                            Answer: A

                                                            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 # 37
                                                            Refer to the exhibit.

                                                            IGMP v3 was enabled on both VSX switches. Which switch becomes the IGMP querier forclients connected to Ace-1 switch?

                                                            Answer: C

                                                            Explanation:
                                                            The setup has Agg-1 and Agg-2 as a VSX pair with IGMPv3 enabled. Ace-1 is a downstream switch connected to clients. The question asks which switch becomes the IGMP querier for clients connected to Ace-
                                                            1.
                                                            * IGMP Snooping & Querier:In a Layer 2 network using IGMP snooping, an IGMP querier is required on each VLAN to periodically send general queries. This prompts hosts to send membership reports, allowing snooping switches to learn which ports need which multicast streams.
                                                            * Querier Election:If multiple devices capable of querying exist on a VLAN (like routers or capable switches), an election occurs. Typically, the device with the lowest IP address on the VLAN becomes the querier.
                                                            * VSX & IGMP Querier:In an ArubaOS-CX VSX environment, the IGMP querier functionality is managed by the VSX pair. Documentation indicates that theprimary VSX switchtypically assumes the role of the IGMP querier for the VLANs it serves, including those extended via MC-LAG to downstream switches.
                                                            * Analysis of Options:
                                                            * A. Agg-2: Would only be the querier if it were the primary VSX switch.
                                                            * B. Both Agg-1 and Agg-2: Incorrect, only one active querier per VLAN is standard.
                                                            * C. Agg-1: Likely the primary VSX switch (often designated or wins election based on priority
                                                            /lower system MAC/IP) and thus becomes the querier.
                                                            * D. Active gateway IP: This is the virtual IP used for unicast routing, but the querier function runs on a physical switch, usually the primary.
                                                            * Conclusion:Assuming Agg-1 is the primary VSX switch (as is common convention or based on default election parameters if not explicitly configured), it will act as the IGMP querier for the VLAN serving clients connected to Ace-1.
                                                            References:AOS-CX Multicast Guide (IGMP Snooping, Querier Election), AOS-CX VSX Guide. This relates to "Switching" (19%) and "Network Resiliency and virtualization" (8%).


                                                            NEW QUESTION # 38
                                                            Network administrators are reporting that switches are taking a very long time to execute commands. Based on the configuration below, what is the most likely cause of the issue?

                                                            Answer: B

                                                            Explanation:
                                                            The configuration shows two TACACS+ servers (10.1.1.1 and 10.1.1.2) with fail-through enabled.
                                                            If the primary TACACS+ server (10.1.1.1) is unreachable, the switch waits for a timeout before trying the secondary server. This delay causes commands to take a very long time to execute, as each authentication attempt has to fail on the primary before moving on.


                                                            NEW QUESTION # 39
                                                            You haverecently configured a switch for 802.IX authentication with HPE Aruba Networking ClearPass. A security admin is seeing events withthe following description in ClearPass Event Viewer.
                                                            RADIUS authentication attempt from unknown NAD (10.10.1.10:1812)'
                                                            Which command should you us to identify theconfiguration issue?

                                                            Answer: A

                                                            Explanation:
                                                            The ClearPass Event Viewer message "RADIUS authentication attempt from unknown NAD (10.10.1.10:
                                                            1812)" indicates that ClearPass received a RADIUS request from the IP address 10.10.1.10, but this IP is not configured as a trusted Network Access Device (NAD) in ClearPass's network device list, or the shared secret doesn't match. The first step in troubleshooting on the switch side is to verify which source IP address the switch is actually using to send these RADIUS requests.
                                                            * RADIUS Source IP:AOS-CX switches can be configured to use a specific source IP address for RADIUS packets, often using the ip source-interface radius [vrf <vrf-name>] command. This is important if the switch has multiple IP interfaces or uses VRFs.
                                                            * Analysis of Commands:
                                                            * A. show ip source-interface radius: This command directly displays the configured source interface and IP address used for RADIUS communications, allowing comparison with the IP configured in ClearPass.
                                                            * B. show aaa authentication-server radius: Shows server group configuration, not the source IP used by the switch.
                                                            * C. show radius-server shared-secret: Not a standard command; secrets are usually masked in other commands.
                                                            * D. show radius-server detail: Shows configured RADIUS server details but doesn't explicitly show the source IP the switch is using to originate packets.
                                                            * Conclusion:To identify why ClearPass sees requests from an "unknown NAD" IP (10.10.1.10), the first step on the switch is to confirm which source IP it's using. show ip source-interface radius provides this crucial information.
                                                            References:AOS-CX Security Guide (RADIUS Client Configuration, ip source-interface), ClearPass Documentation (NAD Configuration). This relates to "Authentication/Authorization" (9%) and
                                                            "Troubleshooting" (10%) objectives.


                                                            NEW QUESTION # 40
                                                            Refer to the exhibits.

                                                            An engineer has applied the above configuration to R1 and R2, however, the router's OSPF adjacency never progresses past the "EXSTART/DR" state.

                                                            Which configuration action on either router will allow R1 and R2 to progress past the
                                                            "EXTART/DR" state?

                                                            Answer: D

                                                            Explanation:
                                                            The OSPF adjacency is stuck in the EXSTART/DR state because the broadcast network type is being used by default on the /31 link. On a /31 point-to-point link, OSPF neighbors should not attempt DR/BDR election. Changing the OSPF network type to point-to-point on either R1 or R2 ensures correct adjacency formation and allows the routers to progress to the FULL state.


                                                            NEW QUESTION # 41
                                                            ......

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