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NEW QUESTION # 12 
Refer to the exhibit. A network engineer must create a PSK WLAN that will be anchored to the DMZ. After this WLAN is created, users cannot connect to it. Based on the output from the RA trace, which action must the engineer take to resolve the issue?
Answer: D
Explanation:
The failure is occurring during WPA/WPA2 key management, not during mobility anchoring. The radioactive trace showsFailed to validate eapol mic. MIC mismatchfollowed byFailed to validate eapol key m2, which means the authenticator and supplicant derived different key material during the PSK handshake. Cisco's Catalyst 9800 client-connectivity troubleshooting maps this log pattern directly to a wrong password condition and lists the corrective actions as fixing the password on the endpoint or on the SSID/WLAN.
The11r MIC validation failedphrase does not automatically make 802.11r the root cause; it only shows that the failed MIC validation occurred while Fast Transition key logic was in use. Disabling 802.11r would be a workaround only for client capability or FT interoperability issues, but the trace points to PSK mismatch.
Removing the anchor WLC would break the intended DMZ anchoring design, and matching WLANs on foreign and anchor is required for anchor deployments, but it would not produce this EAPOL M2 MIC failure.
The correct remediation is to ensure the client-entered PSK matches the WLAN PSK. Reference topics: WPA
/WPA2-PSK authentication, EAPOL 4-way handshake, Catalyst 9800 radioactive trace analysis, and client connectivity troubleshooting.
NEW QUESTION # 13
Refer to the exhibit. An enterprise is deploying Cisco Catalyst 9800 WLCs and is using Catalyst Center as the management platform to oversee wireless access policies. To meet the organization's compliance requirements, all wireless endpoints must be evaluated with security posture validation before gaining access. Which set of CLI commands must be added to the box in the code to complete the configuration?
Answer: D
Explanation:
The correct configuration is aaa-override followed by nac under the existing Catalyst 9800 wireless policy profile. The exhibit already places the administrator in policy-profile configuration mode with wireless profile policy my-policy, so the missing commands must be policy-profile subcommands, not another profile declaration. Cisco's Catalyst 9800 configuration examples show the exact sequence: enter wireless profile policy <policy-profile-name>, enable aaa- override, enable nac, then configure VLAN and no shutdown.
aaa-override permits authorization attributes returned by AAA or Cisco ISE, such as VLAN, ACL, QoS, redirect ACL, or posture-related access controls, to override the locally defined policy.
Cisco's documentation explicitly states that AAA override applies policies coming from AAA or ISE servers, while nac enables Network Access Control in the policy profile. This is the required behavior when endpoints must be posture-validated before normal network access is granted.
Cisco also notes that NAC State is enabled in the policy profile and can only be enabled when AAA override is enabled.
Option A is invalid because nac-policy is not the correct CLI keyword. Options B and D omit NAC.
NEW QUESTION # 14
Which CleanAir feature is used to avoid channels with interference from devices such as outdoor bridges and microwave ovens?
Answer: C
Explanation:
Cisco CleanAir technology is designed to detect, classify, and mitigate RF interference in enterprise wireless networks. Persistent Device Avoidance is a CleanAir feature that identifies non-Wi-Fi sources of interference, such as microwave ovens, outdoor bridges, or other RF devices, and then instructs the wireless LAN controller (WLC) to avoid channels affected by these interferers. By doing so, APs can select cleaner channels, reducing packet loss, improving throughput, and maintaining optimal coverage. Spectrum Analysis (Option B) provides visibility into the RF environment and interference sources but does not automatically avoid channels. Air Quality Index (Option C) gives a real-time assessment of RF quality per channel but is a monitoring metric, not an avoidance mechanism. Channel Utilization (Option D) reports on the percentage of channel occupancy by Wi-Fi traffic, assisting in load balancing, but does not prevent interference from external sources. Persistent Device Avoidance ensures proactive channel selection in environments with consistent interference, enhancing overall network reliability and performance. This capability is critical in high-density or mixed-use environments, where interference from non-Wi-Fi devices can degrade client experience. Reference topics:Wireless Network Operation - Cisco CleanAir, Persistent Device Avoidance, RF interference mitigation, channel optimization.
NEW QUESTION # 15
What is an attribute of the workgroup bridge mode for an AP in a wireless network?
Answer: C
Explanation:
Theworkgroup bridge modeon a Cisco access point is designed to integrate awired network segment into an existing wireless infrastructure. In this mode, the AP acts as a client to a root AP or wireless controller- managed network, bridging Ethernet-connected devices on its wired ports to the wireless LAN. This is commonly deployed in environments where wired devices, such as printers, legacy systems, or isolated office equipment, require network connectivity but cannot directly connect to the wired backbone.
Traffic from devices on the wired segment is encapsulated and transmitted over the wireless link to the root AP, effectively extending network access without running physical cabling. Unlike bridging between multiple AP radios (2.4 GHz vs. 5 GHz), or providing inter-Ethernet port forwarding, the primary attribute of a workgroup bridge iswireless-to-wired integration, not radio-to-radio communication or internal LAN segmentation. Broadcast domains are limited to the bridged wired segment and the wireless uplink; they are not automatically extended across all interfaces without VLAN configuration.
Cisco deployment guides emphasize that workgroup bridge mode is ideal forconnecting remote wired clusters to a centralized WLAN, providing seamless connectivity while maintaining security and management under the controller or root AP. Reference topic:Wireless Network Implementation - AP operational modes, workgroup bridge, and wired segment integration.
NEW QUESTION # 16
Which Cisco Ultra-Reliable Wireless Backhaul process enables devices to establish a reliable connection with the next AP along their path before losing connectivity to the current one in a wireless network during roaming?
Answer: A
Explanation:
The correct answer is Make-before-break handover logic. This is a key feature in Cisco's Ultra- Reliable Wireless Backhaul (URWB) process that allows devices to establish a connection to the next AP (Access Point) before disconnecting from the current AP. This seamless transition ensures that there is no disruption in the wireless connection as the client roams between APs, which is especially important in environments where consistent, low-latency connectivity is essential, such as in real-time applications (e.g., voice or video).
NEW QUESTION # 17
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