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Cisco 350-101 Exam Syllabus Topics:

TopicDetails
Topic 1
  • Wireless Network Operation: Covers initial configuration of Cisco wireless infrastructure, AP discovery and join processes, AP modes, WLAN setup, and client management policies across platforms like Catalyst Center, ISE, and Spaces.
Topic 2
  • Client Connectivity Configuration: Covers configuring authentication both on and off the controller, setting up client connectivity across different operating systems, roaming behavior, and wireless guest network configuration.
Topic 3
  • Wireless Monitoring and Management: Covers network maintenance tasks, client monitoring configuration, troubleshooting client connectivity issues, and integrating with external devices and platforms.
Topic 4
  • Automation and AI: Covers Python scripting basics, NETCONF
  • YANG, wireless API interpretation, and AI-driven analytics, operations, and radio resource management within Catalyst Center.
Topic 5
  • 802.11 Technology Fundamentals: Covers Wi-Fi governance bodies, regional channel and power regulations, and the core technical principles of 802.11 including modulation, channel width, MIMO, topologies, and frame types.
Topic 6
  • RF Fundamentals: Covers the behavior of radio waves, how RF signals are measured and interpreted, the mathematics behind RF calculations, and the characteristics of Wi-Fi antennas.

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Cisco Implementing and Operating Cisco Wireless Core Technologies Sample Questions (Q71-Q76):

NEW QUESTION # 71
A school district is deploying Cisco Catalyst 9176 APs to remote sites with occasional WAN outages. The IT team wants the APs to attempt joining a secondary or tertiary Catalyst 9800 WLC if the primary controller is unreachable. The team must preconfigure all controller IP addresses using the AP CLI before deploying.
Which set of CLI commands sets the primary, secondary, and tertiary controller IP addresses on a Catalyst
9176 AP?

Answer: B

Explanation:
Cisco lightweight and Catalyst access points use CAPWAP for AP-to-controller discovery and join operations. For AP-side preconfiguration, Cisco documents the syntax as capwap ap {primary-base | secondary-base | tertiary-base} controller-name controller-ip-address, specifically for configuring primary, secondary, and tertiary controllers on the AP. This matches option B exactly because it includes the CAPWAP AP command, the controller priority keyword, the controller name, and the controller management IP address. (Cisco) The Catalyst 9800 AP join process also recognizes these configured controller entries in priority order:
primary controller using capwap ap primary-base, secondary controller using capwap ap secondary-base, and tertiary controller using capwap ap tertiary-base. (Cisco) This allows the AP to attempt a backup controller when the preferred controller is unavailable, which is appropriate for remote sites with intermittent WAN reachability. Option A uses obsolete or invalid setcontroller syntax. Option C invents an ap join command format. Option D incorrectly inserts wlc into the AP CAPWAP command. Reference topics:Wireless Network Implementation -CAPWAP discovery, AP join process, Catalyst 9800 controller redundancy, and AP CLI provisioning.


NEW QUESTION # 72
A network engineer has been tasked with migrating the management mode of a Cisco 9176 AP named "Cisco- AP053540555" in a large enterprise wireless deployment. The AP is currently managed by a Cisco Catalyst
9800 Series WLC, but the organization is transitioning to Meraki cloud management for centralized control and monitoring. To complete this migration, the engineer needs to change the AP's management mode to Meraki with force and noprompt to skip validations using the CLI on the wireless controller. What command must the engineer use?

Answer: A

Explanation:
Migrating a Cisco Catalyst AP to Meraki cloud management requires issuing a specific CLI command on the WLC to switch the AP's management mode. The correct syntax isap management mode meraki force noprompt, which instructs the controller to transition the AP to Meraki mode, bypassing validation prompts that normally require manual confirmation. Theforcekeyword ensures the command is executed even if the AP is actively associated or configured, andnopromptsuppresses confirmation dialogues for unattended migration. Options A, C, and D are invalid syntax or improperly order the parameters, which would result in a CLI error. Cisco Wireless Core Technologies recommend this approach during enterprise migration scenarios where multiple APs are moved from Catalyst WLC management to cloud-based Meraki management, enabling centralized configuration and monitoring in a large-scale deployment. Using this command ensures a seamless transition without service disruption, while maintaining inventory consistency and supporting automation for mass AP migrations. Reference topics:Wireless Network Implementation - AP management mode migration, Meraki cloud integration, CLI AP management, Catalyst 9176 WLC migration.


NEW QUESTION # 73
A hotel wants to provide guests with wireless connectivity via a captive portal using a Cisco 9800 WLC. The solution must meet these requirements:
- Ensure that guests are redirected to a custom web page for login and
after authentication must have only internet access.
- The guest SSID must not require a password and must be visible to all clients.
- Network segmentation between staff and guests is required at the VLAN level.
What must the IT team configure on the WLAN?

Answer: A

Explanation:
Central Web Authentication is the correct design for an open guest SSID that redirects users to a captive portal before allowing network access. Cisco describes CWA as a guest-redirection method where the redirect URL and redirect ACL are centrally controlled and communicated to the WLC through RADIUS, with the external authentication system handling the login workflow.
On a Catalyst 9800 WLAN, Cisco's configuration flow for Central Web Authentication requires AAA/ACL configuration, including the AAA server list and an ACL tied to the WLAN so client access can be controlled before and after authentication.
Option D is the only answer that satisfies all requirements: captive portal redirection, post- authentication restriction to Internet-only access, and policy enforcement through ACLs. VLAN- level segmentation is implemented through the WLAN policy profile, which maps guest clients to the guest VLAN rather than the staff VLAN. WPA2-PSK is invalid because the guest SSID must not require a password. A local web server alone does not enforce Internet-only authorization or staff-network isolation. mDNS is unrelated to captive portal authentication or guest segmentation.


NEW QUESTION # 74

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: C

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 # 75
Which feature does a high-gain patch antenna impart to a wireless signal?

Answer: B

Explanation:
A high-gain patch antenna is a directional antenna that concentrates RF energy into a defined coverage area rather than radiating equally in all directions. Cisco's Wireless RF Reference Guide explains that antenna gain determines how RF power is radiated and that higher-gain antennas do not create additional transmit power; they focus existing power in a given direction.
Cisco also distinguishes omnidirectional high-gain patterns, which flatten coverage, from directional antennas, which focus energy toward a target area.
That makes option C correct: a patch antenna imparts a focused beam, typically useful for covering a hallway, warehouse aisle, seating section, point-to-point link, or defined flat service area. Cisco's antenna documentation also states that higher-gain antennas provide longer coverage distance but with a coverage-area tradeoff, especially in a particular direction. Option A is incorrect because antenna gain does not restrict operation to a single narrow frequency; frequency support is determined by antenna design and radio band. Option B describes channel overlap, not antenna behavior. Option D does not describe a standard patch antenna radiation pattern.


NEW QUESTION # 76
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