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| Section | Weight | Objectives |
|---|---|---|
| Topic 1: Client Connectivity Configuration | 15% | - Authentication and encryption methods - Roaming and mobility - Client troubleshooting |
| Topic 2: Radio Frequency Fundamentals | 15% | - Interference and mitigation - Signal propagation and coverage - RF principles and characteristics |
| Topic 3: Wireless Infrastructure Implementation | 20% | - Hardware components and connections - Controller and AP deployment - Management access and security |
| Topic 4: Wireless Network Operation | 20% | - Initial configuration and setup - AP discovery and joining process - WLAN configuration and policies |
| Topic 5: Monitoring, Management, Automation and AI | 15% | - Management platforms and APIs - Automation and AI-driven operations - Monitoring tools and protocols |
| Topic 6: 802.11 Technology Fundamentals | 15% | - Frame types and formats - Channel access and transmission - Standards and amendments |
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NEW QUESTION # 90
What is a benefit of applying TACACS authentication for device access?
Answer: C
Explanation:
TACACS+ is used for device administration, especially for GUI and CLI access to infrastructure platforms such as Cisco Catalyst 9800 WLCs, switches, and routers. Cisco defines TACACS+ as a security application that provides centralized validation for users attempting to access a device or network access server, and it separates authentication, authorization, and accounting functions for administrative control. Cisco ISE device administration documentation further states that TACACS+ is used to control and audit network device configuration, allowing devices to query ISE for administrator authentication and authorization while sending accounting records for logging administrator actions.
Therefore, the primary benefit is streamlined administrator access across platforms. Instead of maintaining local administrator accounts independently on every WLC or network device, TACACS+ enables centralized identity validation, role-based authorization, and consistent audit trails. Option A is incorrect because TACACS+ supports differentiated authorization rather than static grouping. Option B is the opposite of centralized accounting. Option D is inaccurate because TACACS+ is mainly for device administration, whereas client or endpoint network access is typically handled with RADIUS.
NEW QUESTION # 91
Refer to the exhibit.
import requests
import json
API_ENDPOINT_URL = "https://your-network-platform.com/api/v1/wireless-
clients"
AUTH_TOKEN = "YOUR_SECRET_AUTH_TOKEN"
headers = {
"Content-Type": "application/json",
"Authorization": f"Bearer {AUTH_TOKEN}"
}
print("Requesting wireless client data from the API...")
try:
response = requests.get(API_ENDPOINT_URL, headers=headers, timeout=10)
response.raise_for_status()
client_data = response.json()
print("Successfully retrieved and parsed data.\n")
print("--- Wireless Client Details ---")
if isinstance(client_data, list) and client_data:
for client in client_data:
mac_address = client.get("macAddress", "N/A")
ip_address = client.get("ipAddress", "N/A")
ssid = client.get("ssid", "N/A")
print(f"Client MAC: {mac_address}, IP: {ip_address}, SSID: {ssid}")
else:
print("No client data found or the data format is unexpected.")
except requests.exceptions.RequestException as e:
print(f"An error occurred during the API request: {e}")
except json.JSONDecodeError:
print("Failed to parse the API response. It may not be valid JSON.")
A network engineer is investigating how json library is used within a Python script designed to access response content from a Cisco wireless network API endpoint. The engineer wants to better understand how the script uses these elements to process device information. Which approach does the script use to achieve its data extraction goal?
Answer: A
Explanation:
The correct answer is loads function because the script's extraction goal depends on deserializing JSON response data into native Python objects that can be indexed and queried.
Cisco Catalyst Center APIs use REST methods and require payloads to and from the REST interface to be in JSON format, including wireless and client information workflows. In the exhibit, the call client_data = response.json() decodes the HTTP response body into Python data structures. That behavior is functionally aligned with json.loads(): JSON objects become Python dictionaries, JSON arrays become Python lists, and strings/numbers become Python-native equivalents. Python's JSON decoder documentation shows this JSON-to-Python conversion model explicitly, including object-to-dict and array-to-list mappings.
After decoding, the script validates that client_data is a list, iterates through each client record, and uses dictionary .get() to extract macAddress, ipAddress, and ssid. The Requests library documents that Response.json() decodes a JSON response body as a Python object and may return a dictionary or list, which is exactly what the script consumes. dumps performs the opposite operation, split only tokenizes strings, and to_dict is not used here.
NEW QUESTION # 92
How does U-NII-1 operate with regards to the common frequency bands supported in enterprise wireless networks?
Answer: C
Explanation:
U-NII-1 (Unlicensed National Information Infrastructure-1) is a segment of the 5 GHz band commonly used in enterprise wireless deployments. It is specifically designated for indoor use to help minimize interference with other devices and reduce regulatory conflicts. U-NII-1 operates in the lower 5 GHz range (5.150-5.250 GHz in the U.S.) and imposes power and indoor restrictions, which prevents outdoor deployment that could interfere with radar and other critical communications. This band supports 802.11a/n/ac/ax Wi-Fi clients, providing multiple non-overlapping channels that facilitate high-density enterprise deployments. By restricting usage to indoor environments, U-NII-1 helps maintain predictable coverage and mitigates interference from outdoor sources, making it ideal for office and campus environments where controlled radio propagation is critical. The access points and wireless controllers dynamically handle channel assignment and power levels to ensure efficient spectrum usage while conforming to these regulatory limitations. Option C accurately reflects these operational parameters by highlighting indoor restriction and interference minimization, whereas the other options mischaracterize the frequency range, power, or permitted use.
Reference topics:802.11 Technology Fundamentals - U-NII-1 band, indoor use restriction, interference mitigation, enterprise 5 GHz Wi-Fi deployment.
NEW QUESTION # 93
Which feature does bridge mode provide in a Cisco wireless mesh architecture?
Answer: A
Explanation:
Bridge mode in a Cisco wireless mesh deployment allows access points to operate as mesh infrastructure nodes, typically as a Root AP (RAP) or Mesh AP (MAP), so Ethernet segments can be connected across a wireless backhaul. Cisco's mesh design documentation states that in a point-to-point bridging scenario, a mesh AP can extend a remote network by using the backhaul radio "to bridge two segments of a switched network." This directly maps to option A: point-to- point communication between network segments.
In Catalyst 9800 mesh deployments, Cisco documents converting an AP to bridge mode with capwap ap mode bridge, after which the AP rejoins the controller in bridge mode and can be assigned a mesh role. Cisco also defines the RAP as the AP with the wired connection toward the WLC, while the MAP joins through its radio path toward the RAP. Option B is incorrect because bridge mode does not force all traffic to 2.4 GHz; Cisco mesh backhaul can use configured backhaul radios. Option C describes RRM/TPC behavior, not bridge mode. Option D incorrectly associates mesh bridge mode with WAN edge functions.
NEW QUESTION # 94
Which feature enables fast secure roaming in a wireless network?
Answer: A
Explanation:
Fast secure roaming in enterprise wireless networks is achieved using the 802.11r standard, also known as Fast BSS Transition (FT). 802.11r allows clients to authenticate with a new access point (AP) before disassociating from the current AP, significantly reducing the time required for the re-authentication process.
This pre-authentication mechanism ensures that client sessions, such as voice or video calls, are maintained seamlessly when moving between APs in a mobility domain. DCA (Dynamic Channel Assignment) optimizes channel selection but does not affect roaming speed. 802.11ax enhances overall throughput and spectral efficiency but does not directly provide fast roaming. MIMO (Multiple Input Multiple Output) improves signal reliability and capacity but is unrelated to the authentication handoff process. Cisco Wireless Core Technologies highlight the deployment of 802.11r in conjunction with PMK caching and Opportunistic Key Caching (OKC) to further accelerate roaming in high-density environments. Implementing 802.11r is critical for environments requiring minimal packet loss and low latency during client movement, such as voice over Wi-Fi or real-time video applications. Reference topics:Client Connectivity Configuration - 802.11r, Fast BSS Transition, secure fast roaming, mobility domains, PMK caching.
NEW QUESTION # 95
......
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