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HP Aruba Certified Campus Access Mobility Expert Written Exam Sample Questions (Q102-Q107):
NEW QUESTION # 102
A customer would like to allow their IT Helpdesk to configure IoT devices to connect to a single SSID using a unique PSK that other devices cannot use.
Which solution would you recommend?
- A. MPSK AES with HPE Aruba Networking Central Cloud Authentication
- B. MPSK Local
- C. MPSK AES with HPE Aruba Networking ClearPass
- D. MPSK AES with MAC Auth
Answer: A
Explanation:
Comprehensive and Detailed Explanation From Exact Extract of HPE Aruba Networking Switching:
The requirement in this question is to allow IT staff to provision unique pre-shared keys (PSKs) for each IoT device on a single SSID, ensuring that one device's PSK cannot be used by another. This is the definition of Multi-Pre-Shared Key (MPSK) functionality.
HPE Aruba Networking supports three main MPSK deployment methods:
* MPSK Local - Keys are defined locally on the AP or gateway; no external integration.
* MPSK with ClearPass - Keys are managed and validated via ClearPass Policy Manager.
* MPSK with Cloud Authentication - Keys are generated, stored, and managed natively through Aruba Central Cloud Authentication.
In this scenario, the IT Helpdesk wants a simplified, cloud-based method to generate and manage per-device unique PSKs without needing a ClearPass deployment. This aligns directly with MPSK AES with HPE Aruba Networking Central Cloud Authentication.
Exact Extract from HPE Aruba Networking Switching and Central Documentation:
"MPSK with Cloud Authentication allows administrators to configure a single SSID where each device is assigned a unique PSK. The PSKs are securely stored and validated using Aruba Central's cloud-based authentication service."
"Each PSK is tied to a specific client identity. If another device attempts to connect using the same PSK, the authentication will fail."
"This method simplifies onboarding of IoT and headless devices while maintaining security equivalent to
802.1X."
Thus, the correct recommendation is MPSK AES with Aruba Central Cloud Authentication, which fully supports per-device key uniqueness, centralized management, and cloud-based authentication-ideal for IoT device onboarding.
Why the Other Options Are Incorrect:
* A. MPSK AES with ClearPass:Valid and secure, but requires an on-prem ClearPass Policy Manager deployment. The question specifies a simpler method for IT Helpdesk to manage keys directly, which Cloud Authentication provides natively.
"ClearPass MPSK requires policy manager integration; Aruba Central Cloud Authentication provides a simpler cloud-native alternative."
* C. MPSK Local:Suitable for small static environments, but not scalable and requires manual key creation on the AP or gateway. Does not allow IT staff to easily generate new keys per device via Central.
"MPSK Local does not support centralized lifecycle management or key revocation."
* D. MPSK AES with MAC Auth:MPSK already handles per-device authentication via unique keys; MAC authentication is unnecessary and less secure.
"MAC authentication is an alternate method for non-802.1X devices but is not required with MPSK." References of HPE Aruba Networking Switching Documents or Study Guide:
* Aruba Central Cloud Authentication and MPSK Deployment Guide - "Configuring MPSK AES with Cloud Authentication."
* Aruba Wi-Fi 6 and IoT Integration Best Practices Guide - "Securing IoT with Cloud-Managed MPSK."
* ArubaOS 10 WLAN Configuration Guide - "MPSK Modes (Local, ClearPass, Cloud Authentication) and Use Cases."
NEW QUESTION # 103
A university owns a campus with several buildings segmented into east and west wings, which are L3 separated. The east wing has 1600 APs. and the west wing has 1200 Aps. Each wing has a single gateway cluster managed by HPE Aruba Networking Central. Each cluster contains one 7210 mobility gateway The gateways are configured with DHCP relay and route all client VLANs. A new business-critical facultyreal-time application requires users to roam within wings but not across wings without disconnections or delay increments.
Which changes must the network administrator make lo successfully meet the requirement without performance degradation matching best practices? (Select two.)
- A. Remove the DHCP relay from the gateways and enable the DHCP server instead
- B. Add a single 7210 mobility gateway to each cluster.
- C. Run L2 for all SSIDs and permit the users' VLANs in the gateway's uplinks.
- D. Replace me 7210 mobility gateway in the east wing with a pair or 9012 mobility gateways
- E. Replace the 7210 mobility gateway in the west wing with a pair of 7030 mobility gateways.
Answer: B,C
Explanation:
To support a business-critical faculty real-time application that requires seamless roaming within wings without cross-wing roaming, it's essential to ensure high availability and sufficient capacity. Adding an additional 7210 mobility gateway to each cluster would provide the required redundancy and capacity.
Running L2 for all SSIDs and permitting user VLANs on gateway uplinks would facilitate the necessary traffic flow without L3 segmentation issues, thus supporting seamless roaming within each wing.
NEW QUESTION # 104
Exhibit.
A university runs its own TV station in the city The IT department deploys a multimedia server so the TV productions can be sent out to the entire campus over the IP network using multicast-based communications in order to improve the bandwidth consumption. PlM sparse Mode and IGMP snooping features are enabled.
When wireless users join the multicast groups, all users connected to the same WLAN experience poor network performance. However, wired users are not affected in this way While troubleshooting the network administrator saves the packet captures shown in the exhibit and concludes that all users even those not joining the multicast group, receive the same multicast flow at slow speeds.
Which features should the network administrator enable to fix the problem?
- A. Dynamic Multicast Optimization and UCC QoS correction
- B. Dynamic Multicast Optimization and Multicast Transmission Optimization
- C. UCC QoS correction and Multicast Transmission Optimization
- D. ARP broadcast conversion into unicast and Multicast Transmission Optimization
Answer: B
Explanation:
Dynamic Multicast Optimization (DMO) and Multicast Transmission Optimization are features that can help address issues with multicast traffic in wireless environments. DMO optimizes the way multicast traffic is transmitted over the air by converting multicast streams into unicast streams to the clients that need them.
This reduces unnecessary traffic for clients that have not subscribed to the multicast group and can improve overall network performance. Multicast Transmission Optimization adjusts the transmission rate of multicast frames to ensure they are sent at optimal speeds, addressing the issue of multicast flow being received at slow speeds by all users.
NEW QUESTION # 105 
Which statement is true given the following CLI output from a CX 6300?
- A. A wired client with IP address 10.203.1.100 is on a remote CX 6300 in the fabric with loopback IP address 172.21.11.2
- B. There are no active fabric clients on the CX switch with RD 172.16.10.1
- C. A wired client with IP address 10.203.1.100 has a host route that is not being properly advertised
- D. The overlay loopback addresses are advertised in the fabric with 24-bit subnet masks
Answer: A
Explanation:
The CLI output shown is from the Aruba CX 6300 running AOS-CX, displaying the routing table in an EVPN-VXLAN fabric environment.
Key details from the output:
Prefix Nexthop Interface Origin/Type Distance/Metric
10.203.1.0/24 - vlan203 C [0/0]
10.203.1.1/32 - vlan203 L [0/0]
10.203.1.100/32 172.21.11.2 - B/EV [200/0]
172.21.11.4/32 172.21.11.2 - B/EV [200/0]
172.21.11.5/32 - loopback3 L [0/0]
From this, we can interpret the following:
* Routes marked as B/EV originate from BGP EVPN, meaning they are advertised and learned over the VXLAN fabric.
* The next hop 172.21.11.2 indicates that these routes are learned from another fabric device with loopback address 172.21.11.2.
* The route 10.203.1.100/32 is a host route (specific endpoint) reachable via that remote switch.
According to the Aruba CX EVPN-VXLAN Fabric Deployment Guide:
"In a VXLAN fabric, host routes (/32) are dynamically advertised using EVPN Type 2 routes.
These routes include MAC/IP bindings of endpoints connected to remote VTEPs (loopbacks).
The next-hop address in the routing table corresponds to the VTEP IP (loopback address) of the remote switch where the client resides." Thus, the presence of a /32 route (10.203.1.100/32) with next hop 172.21.11.2 indicates that this wired client resides behind another CX 6300 fabric node whose VTEP address is 172.21.11.2.
Option Analysis:
* A. Correct - The /32 route confirms that 10.203.1.100 is reachable via remote CX at 172.21.11.2 (remote VTEP).
* B. Incorrect - The RD information isn't shown here; this statement cannot be validated and contradicts visible EVPN entries.
* C. Incorrect - The route is properly advertised and reachable via EVPN; no indication of advertisement failure.
* D. Incorrect - Overlay loopbacks (172.21.11.x) are advertised as /32 host routes, not /24 subnets.
Final Verified answer: A
Reference Sources (HPE Aruba Official Materials):
* Aruba AOS-CX EVPN-VXLAN Fabric Deployment and Configuration Guide
* Aruba CX 6300 Routing and BGP Configuration Guide
* Aruba Certified Switching Professional (ACSP) Study Guide - EVPN-VXLAN Route Interpretation
NEW QUESTION # 106
Refer to the CLI output below:
What statement about the output above is correct?
- A. The port-access role was configured with gateway-role visitor
- B. The secondary tunnel endpoint IP is 10.10-10.151.
- C. The UBT zone was configured to use a user-defined VRF
- D. The client authenticated using dot1x.
Answer: B
Explanation:
The CLI output indicates a tunnel creation process, where "SW hw tun created" refers to the switch hardware tunnel being created. The line mentioning "BYP-10.10.10.101 -> SW hw tun created to 10.10.10.151 tunnel
15." implies that a tunnel was established to the secondary tunnel endpoint with the IP address 10.10.10.151.
This is a common configuration for User-Based Tunneling (UBT) setups where traffic is tunneled to a specific endpoint.
NEW QUESTION # 107
......
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