Free PDF Quiz HP - HPE6-A85 - Aruba Campus Access Associate Exam Fantastic Latest Study Materials
Free PDF Quiz HP - HPE6-A85 - Aruba Campus Access Associate Exam Fantastic Latest Study Materials
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Sample HP HPE6-A85 Exam & Practice HPE6-A85 Questions
HP certification HPE6-A85 exam is the first step for the IT employees to set foot on the road to improve their job. Passing HP Certification HPE6-A85 Exam is the stepping stone towards your career peak. FreePdfDump can help you pass HP certification HPE6-A85 exam successfully.
HP HPE6-A85 exam is designed for individuals seeking to become an Aruba Campus Access Associate. HPE6-A85 exam tests the candidate's knowledge in configuring and managing Aruba WLANs. It is an ideal certification for network administrators, network engineers, and network architects who are responsible for designing, implementing, and managing Aruba wireless networks.
HP HPE6-A85 (Aruba Campus Access Associate) Exam is intended for network professionals with a strong foundation in wireless networking and experience in configuring and managing wired and wireless networks. Aruba Campus Access Associate Exam certification is ideal for professionals who are responsible for designing, implementing, configuring, and supporting small-to-medium scale wireless networks in enterprise-level environments. Aruba Campus Access Associate Exam certification ensures that professionals have the essential skills to operate Aruba WLANs, configure access points and controllers, troubleshooting, and adopt best practices to optimize network performance.
In order to prepare for the HPE6-A85 Exam, candidates should have a strong understanding of Aruba wireless networking concepts, as well as experience working with Aruba technologies in a professional setting. Candidates can also pursue training and certification programs offered by HP and other third-party providers to further enhance their skills and knowledge.
HP Aruba Campus Access Associate Exam Sample Questions (Q38-Q43):
NEW QUESTION # 38
Which flew in a Layer 3 IPv4 packet header is used to mitigate Layer 3 route loops?
- A. Time To Live
- B. Checksum
- C. Protocol
- D. Destination IP
Answer: A
Explanation:
The field in a Layer 3 IPv4 packet header that is used to mitigate Layer 3 route loops is Time To Live (TTL). TTL is an 8-bit field that indicates the maximum number of hops that a packet can traverse before being discarded. TTL is set by the source device and decremented by one by each router that forwards the packet. If TTL reaches zero, the packet is dropped and an ICMP Internet Control Message Protocol (ICMP) Internet Control Message Protocol (ICMP) is a network protocol that provides error reporting and diagnostic functions for IP networks. ICMP is used to send messages such as echo requests and replies (ping), destination unreachable, time exceeded, parameter problem, source quench, redirect, etc. ICMP messages are encapsulated in IP datagrams and have a specific format that contains fields such as type, code, checksum, identifier, sequence number, data, etc. ICMP messages can be verified by using commands such as ping, traceroute, debug ip icmp, etc. message is sent back to the source device. TTL is used to mitigate Layer
3 route loops because it prevents packets from circulating indefinitely in a looped network topology. TTL also helps to conserve network resources and avoid congestion caused by looped packets.
The other options are not fields in a Layer 3 IPv4 packet header because:
- Checksum: Checksum is a 16-bit field that is used to verify the integrity of the IP header. Checksum is calculated by the source device and verified by the destination device based on the values of all fields in the IP header. Checksum does not mitigate Layer 3 route loops because it does not limit the number of hops that a packet can traverse.
- Protocol: Protocol is an 8-bit field that indicates the type of payload carried by the IP datagram. Protocol identifies the upper-layer protocol that uses IP for data transmission, such as TCP Transmission Control Protocol (TCP) Transmission Control Protocol (TCP) is a connection-oriented transport layer protocol that provides reliable, ordered, and error-checked delivery of data between applications on different devices. TCP uses a three-way handshake to establish a connection between two endpoints, and uses sequence numbers, acknowledgments, and windowing to ensure data delivery and flow control. TCP also uses mechanisms such as retransmission, congestion avoidance, and fast recovery to handle packet loss and congestion. TCP segments data into smaller units called segments, which are encapsulated in IP datagrams and have a specific format that contains fields such as source port, destination port, sequence number, acknowledgment number, header length, flags, window size, checksum, urgent pointer, options, data, etc. TCP segments can be verified by using commands such as telnet, ftp, ssh, debug ip tcp transactions, etc ., UDP User Datagram Protocol (UDP) User Datagram Protocol (UDP) is a connectionless transport layer protocol that provides
NEW QUESTION # 39
A network technician has successfully connected to the employee SSID via 802 1X.
Which RADIUS message should you look for to ensure a successful connection?
- A. Authenticated
- B. Success
- C. Access-Accept
- D. Authorized
Answer: C
Explanation:
The RADIUS message that you should look for to ensure a successful connection via 802.1X is Access- Accept. This message indicates that the RADIUS server has authenticated and authorized the supplicant (the device that wants to access thenetwork) and has granted it access to the network resources. The Access-Accept message may also contain additional attributes such as VLAN ID, session timeout, or filter ID that specify how the authenticator (the device that controls access to the network, such as a switch) should treat the supplicant's traffic.
The other options are not RADIUS messages because:
- Authorized: This is not a RADIUS message, but a state that indicates that a port on an authenticator is allowed to pass traffic from a supplicant after successful authentication and authorization.
- Success: This is not a RADIUS message, but a status that indicates that an EAP Extensible Authentication Protocol (EAP) is an authentication framework that provides support for multiple authentication methods, such as passwords, certificates, tokens, or biometrics. EAP is used in wireless networks and point-to-point connections to provide secure authentication between a supplicant (a device that wants to access the network) and an authentication server (a device that verifies the credentials of the supplicant). exchange has completed successfully between a supplicant and an authentication server.
- Authenticated: This is not a RADIUS message, but a state that indicates that a port on an authenticator has received an EAP-Success message from an authentication server after successful authentication of a supplicant.
References:
https://en.wikipedia.org/wiki/RADIUS#Access-Accept
https://www.cisco.com/c/en/us/support/docs/security-vpn/remote-authentication-dial-user-service- radius/13838-https://en.wikipedia.org/wiki/IEEE_802.1X#Port-based_network_access_control
https://en.wikipedia.org/wiki/Extensible_Authentication_Protocol#EAP_exchange
NEW QUESTION # 40
What is indicated by a solid amber radio status LED on an Aruba AP?
- A. Not enough PoE is provided from the switch to power both radios of the AP
- B. The radio is working in mesh mode
- C. The radio is working the 5 GHz band only.
- D. The radio is enabled in monitor or spectrum analysis mode
Answer: A
Explanation:
On an Aruba AP, a solid amber radio status LED indicates: A. Not enough PoE is provided from the switch to power both radios of the AP When the radio status LED on an Aruba AP shows a solid amber color, it typically signifies that the PoE (Power over Ethernet) supplied by the switch is insufficient to power both radios of the AP (usually the
2.4 GHz and 5 GHz bands). This may require checking the PoE budget of the switch or using a higher- powered PoE source.
Other options, such as the radio working in mesh mode, operating only in the 5 GHz band, or being enabled in monitor or spectrum analysis mode, typically do not result in the LED showing a solid amber color.
NEW QUESTION # 41
You need to configure wireless access for several classes of loT devices, some of which operate only with 802 11b. Each class must have a unique PSK and will require a different security policy applied as a role There will be 15-20 different classes of devices and performance should be optimized Which option fulfills these requirements''
- A. Single SSID with MPSK for each loT class using 2.4GHz and 5 GHz bands
- B. Individual SSIDs with unique PSK for each loT class, using 5GHz and 6 GHz bands
- C. Individual SSIDs with unique PSK for each loT class, using 2.4GHZ and 5GHz band
- D. Single SSID with MPSK for each loT class using 5 GHz and 6 GHz bands
Answer: A
Explanation:
For configuring wireless access for multiple classes of IoT devices with varying security requirements, using a single SSID with Multiple Pre-Shared Keys (MPSK) is an efficient solution. MPSK allows different devices or groups of devices to connect to the same SSID but with unique PSKs, facilitating unique security policies for each class. Given that some IoT devices only support 802.11b, which operates in the 2.4GHz band, it is essential to include the 2.4GHz band in the configuration. The 5GHz band should also be included to support devices capable of operating in that band and to optimize network performance. The 6GHz band (option A) is not suitable since 802.11b devices are not compatible with it. Individual SSIDs for each IoT class (options C and D) would unnecessarily complicate network management and SSID overhead.
NEW QUESTION # 42
Two independent ArubaOS-CX 6300 switches with Spanning Tree (STP) settings are interconnected with two cables between ports 1/1/1 and 1/1/2 All four ports have "no shutdown" and "no routing" commands How will STP forward or discard traffic on these ports?
- A. The switch with the lower MAC address will discard on one port, while the switch with the higher MAC address will forward on both ports
- B. The switch with the lower MAC address will forward on both ports, while the switch with the higher MAC address will forward on both ports
- C. The switch with the lower MAC address will discard on one port, while the switch with the higher MAC address will discard on one port
- D. The switch with the lower MAC address will forward on both ports, while the switch with the higher MAC address will discard on one port
Answer: C
Explanation:
The way that STP Spanning Tree Protocol. STP is a network protocol that ensures a loop-free topology for any bridged Ethernet local area network by preventing redundant paths between switches or bridges from creating loops that cause broadcast storms, multiple frame transmission, and MAC table instability. STP creates a logical tree structure that spans all of the switches in an extended network and blocks any redundant links that are not part of the tree from forwarding data packets3. will forward or discard traffic on these ports is as follows:
* STP will elect a root bridge among the two switches based on their bridge IDs, which are composed of a priority value and a MAC address. The switch with the lower bridge ID will become the root bridge and will forward traffic on all its ports.
* STP will assign a role and a state to each port on both switches based on their port IDs, which are composed of a priority value and a port number. The port with the lower port ID will become the designated port and will forward traffic, while the port with the higher port ID will become the alternate port and will discard traffic.
* In this scenario, since both switches have two cables connected between ports 1/1/1 and 1/1/2, there will be two possible paths between them, creating a loop. To prevent this loop, STP will block one of these paths by discarding traffic on one of the ports on each switch.
* Assuming that both switches have the same priority value (default is 32768), the switch with the lower MAC address will have the lower bridge ID and will become the root bridge. The root bridge will forward traffic on both ports 1/1/1 and 1/1/2.
* Assuming that both ports have the same priority value (default is 128), port 1/1/1 will have a lower port ID than port 1/1/2 on both switches because it has a lower port number. Port 1/1/1 will become the designated port and will forward traffic, while port 1/1/2 will become the alternate port and will discard traffic.
* Therefore, the switch with the lower MAC address will discard traffic on one port (port 1/1/2), while the switch with the higher MAC address will also discard traffic on one port (port 1/1/2).
References: 3 https://en.wikipedia.org/wiki/Spanning_Tree_Protocol
NEW QUESTION # 43
......
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