FREE PDF 2025 AUTHORITATIVE HP HPE7-A06 VALID DUMPS QUESTIONS

Free PDF 2025 Authoritative HP HPE7-A06 Valid Dumps Questions

Free PDF 2025 Authoritative HP HPE7-A06 Valid Dumps Questions

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Quiz 2025 HP Pass-Sure HPE7-A06: HPE Campus Access Switching Expert Written Exam Valid Dumps Questions

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HPE Campus Access Switching Expert Written Exam Sample Questions (Q13-Q18):

NEW QUESTION # 13
Refer to the exhibit.

Acme Corp has VM workload running downstream of ToR-1 and has noticed performance degradation. They suspect ToR-1 uplinks are periodically over utilized. A partner has suggested you migrate your legacy 1U Coie-1 and Cote-2 to the CX 6400 series.
Which aspects of this platform would solve the customer's problem, while focusing on implementing HPE Aruba Networking best practices? (Select two.)

  • A. The proposed new core's VSF capabilityallows multiple active forwarding pathways from ToR-1 based while eliminating the need for STP.
  • B. The proposed solutions backplane stacking permits the directly connected ESXI hosts to load balance using active LACP.
  • C. MC-LAG permits Core-1 and Core-2 to present the edge 602.3ad device as a common system ID"
  • D. The CX 6400 series supports multiple active forwardingpathways from ToR-1 based on multi-region design.

Answer: A,C

Explanation:
The question involves a customer experiencing performance degradation due to periodic overutilization of ToR-1 uplinks to legacy Core-1 and Core-2 switches. The proposed solution is to migrate to CX 6400 series switches, and the task is to identify which aspects of the CX 6400 platform address the issue while adhering to HPE Aruba Networking best practices.
* Analysis of Options:
* Option A:Incorrect. The CX 6400 does not support "multi-region design" as a feature for active forwarding pathways.
* Option B:Correct. Virtual Switching Framework (VSF) on the CX 6400 allows multiple active forwarding pathways by creating a single logical switch from multiple physical switches, eliminating the need for STP in the core and reducing uplink congestion.
* Option C:Incorrect. Backplane stacking does not directly enable ESXi hosts to load balance using active LACP; this is unrelated to uplink utilization.
* Option D:Correct. Multi-Chassis Link Aggregation (MC-LAG) allows Core-1 and Core-2 to form a single logical 802.3ad (LACP) device, enabling active-active uplinks from ToR-1 and load balancing traffic to prevent overutilization.
* Why B and D are Correct:The performance degradation is caused by uplink overutilization, likely due to STP blocking redundant paths or inefficient load balancing. The CX 6400's VSF capability combines multiple switches into a single logical device, allowing all uplinks from ToR-1 to be active without relying on STP, which often blocks redundant paths. MC-LAG further enhances this by presenting Core-1 and Core-2 as a single LACP system, enabling ToR-1 to use all uplinks actively via LACP load balancing. These features align with HPE Aruba Networking best practices for high-availability and performance in campus core deployments.
* Relevance to Certification Objectives:
* Network Resiliency and Virtualization (8%):Designing and troubleshooting VSF and MC- LAG for resiliency and redundancy.
* Performance Optimization (6%):Analyzing and remediating uplink utilization issues.
* Connectivity (9%):Applying advanced networking architectures like VSF and MC-LAG.
References:
HPE Aruba Networking AOS-CX Configuration Guide: VSF and MC-LAG Configuration, detailing active forwarding and load balancing.
HPE7-A06Study Guide: Covers core switch resiliency and performance optimization.
HPE Aruba Networking Technical Documentation: CX 6400 Series Deployment Best Practices.


NEW QUESTION # 14
Exhibit.

After an initial setup of CX 8325 VSX configuration, the active gateway is set up for SVI 10. For testing purposes. SVI 10 on sw-aggi is shut down while traffic from the client connected to Edge-1 is initiated towards the default route.
What is the expected behavior white performing this test?

  • A. Traffic is potentially dropped between the client and the destination.
  • B. Traffic Is unaffected and a 50nsfailover time is expected for agg-sw2 to start traffic forwarding.
  • C. Traffic is dropped and vsx-sync will disable SVI10 on agg-sw2 automatically.
  • D. Traffic is forwarded over the ISL without the risk of dropped packets.

Answer: B

Explanation:
The question involves a VSX configuration with CX 8325 switches (agg-sw1 and agg-sw2) where SVI 10's active-gateway is set up. For testing, SVI 10 on agg-sw1 is shutdown, and traffic from a client connected to Edge-1 is initiated toward the default route. The task is to determine the expected behavior.
* Analysis of Options:
* Option A:Incorrect. Traffic is not dropped, as VSX ensures redundancy via the active-gateway on agg-sw2.
* Option B:Incorrect. Traffic does not traverse the ISL unnecessarily; agg-sw2 takes over directly.
* Option C:Correct. Traffic continues unaffected, with a 50ms failover time for agg-sw2 to assume forwarding responsibilities for SVI 10.
* Option D:Incorrect. Traffic is not dropped, and vsx-sync does not disable SVI 10 on agg-sw2; it ensures consistency.
* Why Option C is Correct:In a VSX cluster with active-gateway, both switches (agg-sw1 and agg- sw2) share a virtual IP and vMAC for SVI 10, allowing either to respond to ARP requests and forward traffic. Shutting down SVI 10 on agg-sw1 triggers agg-sw2 to take over Layer 3 forwarding, leveraging the active-gateway configuration. VSX's fast failover mechanism ensures a typical failover time of approximately 50ms, making the transition seamless for clients on Edge-1. The vsx-sync feature ensures SVI configurations remain consistent, preventing traffic disruption. This behavior aligns with HPE Aruba Networking's VSX high-availability design.
* Relevance to Certification Objectives:
* Network Resiliency and Virtualization (8%):Designing and troubleshooting VSX for high availability.
* Routing (16%):Ensuring seamless Layer 3 forwarding in VSX environments.
* Troubleshooting (10%):Diagnosing failover behavior in campus networks.
References:
HPE Aruba Networking AOS-CX Configuration Guide: VSX Active-Gateway and Failover.
HPE7-A06Study Guide: Covers VSX high-availability and failover times.
HPE Aruba Networking Technical Documentation: VSX Best Practices for Layer 3 Redundancy.


NEW QUESTION # 15
Match each BGP element to its description.

Answer:

Explanation:

Explanation:

This question requires matching BGP protocol elements (mostly message types) to their primary function or description.
* OPEN Message:This is the first message sent after the TCP connection is established between BGP peers. Routers exchange OPEN messages to negotiate session parameters (AS Number, Hold Time, Router ID, Capabilities). A successful exchange leads to session establishment.
* Matches:"sets up and establishes BGP adjacency"
* UPDATE Message:This message is used to communicate network reachability information (NLRI). It carries prefixes that are being advertised, path attributes associated with those prefixes, and/or prefixes that are being withdrawn.
* Matches:"advertises, updates, or withdraws routes"
* KEEPALIVE Message:These messages are sent periodically between BGP peers within the agreed- upon Hold Time interval. Their primary purpose is to confirm that the peer is still alive and the session is active, especially when there are no UPDATE messages to send.
* Matches:"ensures that BGP peers are still alive"
* NOTIFICATION Message:This message is sent when a BGP error condition is detected (e.g., malformed message, unacceptable parameters in an OPEN message, hold timer expiry). Sending or receiving a NOTIFICATION message immediately causes the BGP session to terminate.
* Matches:"indicates error condition to a BGP neighbor"
* Route Refresh:This is a BGP capability (defined in RFC 2918) that allows a BGP speaker to request its peer to resend its routing updates for a specific address family, typically used after a policy change without requiring a full BGP session reset.
* Matches:"request a BGP peer to resend updated messages"
References:RFC 4271 (BGP4 Specification - Section 4, Messages), RFC 2918 (BGP Route Refresh Capability). This relates to the "Routing" (16%) objective.


NEW QUESTION # 16
A client is unable to connect to the network, In the HPE Aruba Networking ClearPass access tracker, wo can seean EAP timeout What is a possible cause of this message?

  • A. The radius server doesnot trust the client certificate
  • B. The client does not trust the radius server certificate.
  • C. The radius server can seethat theclient certificate is expired.
  • D. The client can see that theradiusserver certificateis expired.

Answer: B

Explanation:
The question involves an EAP timeout in HPE Aruba Networking ClearPass Access Tracker during an 802.1 X authentication attempt, with the task of identifying a possible cause.
* Analysis of Options:
* Option A:Incorrect. A client certificate trust issue would cause a different error, not an EAP timeout.
* Option B:Incorrect. An expired client certificate would result in an authentication failure, not a timeout.
* Option C:Incorrect. If the client sees an expired RADIUS server certificate, it would reject it, but this typically causes a trust error, not a timeout.
* Option D:Correct. If the client does not trust the RADIUS server's certificate (e.g., missing CA certificate or untrusted issuer), it may fail to proceed with the EAP handshake, leading to an EAP timeout.
* Why Option D is Correct:In 802.1X authentication with EAP (e.g., EAP-TLS or EAP-PEAP), the client must trust the RADIUS server's certificate to establish a secure TLS tunnel. If the client's trust store lacks the Certificate Authority (CA) certificate or the server's certificate is untrusted (e.g., self- signed without proper installation), the clientaborts the EAP handshake, resulting in an EAP timeout logged in ClearPass. This is a common issue in 802.1X deployments and can be resolved by ensuring the client has the correct CA certificate or by using a trusted server certificate, as per HPE Aruba Networking's security guidelines.
* Relevance to Certification Objectives:
* Authentication/Authorization (9%):Troubleshooting 802.1X and ClearPass authentication issues.
* Security (10%):Diagnosing wired 802.1X with EAP-TLS failures.
* Troubleshooting (10%):Resolving authentication timeouts in campus networks.
References:
HPE Aruba Networking ClearPass Policy Manager User Guide: 802.1X Authentication Troubleshooting.
HPE7-A06Study Guide: Covers EAP-based authentication and certificate issues.
HPE Aruba Networking Technical Documentation: 802.1X Certificate-Based Authentication Best Practices.


NEW QUESTION # 17
Youare configuring an HPE Aruba NetworkingGateway Ouster with AOS-10. What is true about 802.1 X functionality incombination with gateways? (Select two.)

  • A. The UDG remains fixed on L2-connected gateways but not on 1.3-connected gateways.
  • B. Regardless of using gateways, the CoA message is always sent to the APs.
  • C. The gateways areused as a RADIUS proxy, while the AP is theauthenticator.
  • D. Users onL3-oonnoctod gateways need to perform a full authentication after re-association on theAP.
  • E. The gateways actasRADIUS Proxy only in Tunnel and Bridged Mode.

Answer: A,C

Explanation:
This question asks about 802.1X functionality in an AOS-10 environment involving Gateway Clusters.
* AOS-10 Gateway/802.1X Architecture:
* Authenticator:The Access Point (AP) typically acts as the 802.1X authenticator, handling EAPoL frames with the client.
* RADIUS Proxy:The Gateway Cluster (specifically the cluster leader or UDG anchor) often acts as a RADIUS proxy, forwarding RADIUS messages between the APs and the central RADIUS server (e.g., ClearPass). This simplifies RADIUS configuration as the server only needs to know about the gateway cluster.
* CoA:Change of Authorization messages from the RADIUS server are typically sent to the device acting as the RADIUS client, which is the Gateway Cluster when operating in proxy mode.
* Mobility (L2 vs L3):Roaming behavior and User Designated Gateway (UDG) assignment can differ based on whether clients maintain their IP address (L2 mobility) or potentially require new IP information (L3 mobility). L2-connected gateway deployments generally allow for more seamless UDG persistence compared to L3-connected deployments where the client might roam across subnet boundaries managed by different gateways.
* Re-authentication:Seamless roaming mechanisms aim to minimize full re-authentications during roaming events.
* Analysis of Options:
* A: Full re-authentication after re-association on L3-connected gateways might occur in some scenarios but contradicts the goal of seamless roaming.
* B: States the UDG remains fixed on L2-connected but not on L3-connected gateways. This aligns with the architectural differences in handling mobility across L2 vs L3 boundaries within a cluster.
* C: Incorrect. CoA is generally sent to the RADIUS client/proxy (the Gateway Cluster), not always directly to the APs.
* D: Correct. Gateways commonly act as a RADIUS proxy, while the AP remains the authenticator handling EAPoL with the client.
* E: Incorrect. The RADIUS proxy function is not limited to only Tunnel and Bridged modes.
* Conclusion:Options B and D accurately describe common characteristics of 802.1X operation within an AOS-10 Gateway Cluster architecture.
References:Aruba AOS-10 documentation (Gateway Clusters, User-Based Tunneling, 802.1X/RADIUS interaction, L2/L3 Mobility). This relates to "Authentication/Authorization" (9%), "Connectivity" (9%), and
"WLAN" (9%) objectives.


NEW QUESTION # 18
......

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