VALID HPE7-A01 TEST GUIDE - HPE7-A01 LATEST EXAM PATTERN

Valid HPE7-A01 Test Guide - HPE7-A01 Latest Exam Pattern

Valid HPE7-A01 Test Guide - HPE7-A01 Latest Exam Pattern

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Tags: Valid HPE7-A01 Test Guide, HPE7-A01 Latest Exam Pattern, HPE7-A01 Study Tool, HPE7-A01 Reliable Exam Labs, Valid HPE7-A01 Study Notes

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Almost every Aruba Certified Campus Access Professional Exam (HPE7-A01) test candidate nowadays is confused about the Aruba Certified Campus Access Professional Exam (HPE7-A01) study material. They don't know where to download updated HPE7-A01 questions that can help them prepare quickly for the Aruba Certified Campus Access Professional Exam (HPE7-A01) test. Some rely on outdated Aruba Certified Campus Access Professional Exam (HPE7-A01) questions and suffer from the loss of money and time.

HP HPE7-A01 (Aruba Certified Campus Access Professional) certification exam is an essential certification for IT professionals who specialize in wireless networking and network design. Aruba Certified Campus Access Professional Exam certification exam tests the knowledge and skills required to design, configure, and troubleshoot wireless networks in modern campus environments. Candidates who pass the HPE7-A01 certification exam will have the knowledge and skills to design and manage wireless networks that meet the needs of today's businesses and organizations.

To pass the HPE7-A01 Certification Exam, candidates must demonstrate a thorough understanding of Aruba wireless technologies, including access points, controllers, and mobility controllers. They must also have a strong grasp of wireless security protocols, such as 802.1x, WPA2, and Advanced Encryption Standard (AES). Additionally, they must be familiar with network design principles, network management, and troubleshooting methodologies.

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HPE7-A01 Latest Exam Pattern | HPE7-A01 Study Tool

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HP Aruba Certified Campus Access Professional Exam Sample Questions (Q61-Q66):

NEW QUESTION # 61
A network engineer recently identified that a wired device connected to a CX Switch is misbehaving on the network To address this issue, a new ClearPass policy has been put in place to prevent this device from connecting to the network again.
Which steps need to be implemented to allow ClearPass to perform a CoA and change the access for this wired device? (Select two.)

  • A. Bounce the switchport
  • B. Use Dynamic Segmentation.
  • C. Confirm that NTP is configured on the switch and ClearPass
  • D. Configure dynamic authorization on the switchport
  • E. Configure dynamic authorization on the switch.

Answer: C,E

Explanation:
Explanation
To allow ClearPass to perform a CoA and change the access for a wired device, the following steps need to be implemented:
* Confirm that NTP is configured on the switch and ClearPass. NTP is required to synchronize the time between the switch and ClearPass, which is essential for CoA messages to be processed correctly1.
* Configure dynamic authorization on the switch. Dynamic authorization is a feature that enables the switch to accept CoA messages from a RADIUS server and apply them to existing sessions2. Dynamic authorization can be enabled globally or per port on the switch2.
* Optionally, configure dynamic authorization on the switchport. This step is not required, but it can provide more granular control over which ports can accept CoA messages from a RADIUS server2.
Bouncing the switchport or using Dynamic Segmentation are not necessary steps for allowing ClearPass to perform a CoA and change the access for a wired device. References: 1
https://www.arubanetworks.com/techdocs/ClearPass/6.7/Aruba_DeployGd_HTML/Content/Aruba%20Controlle
2
https://www.arubanetworks.com/techdocs/AOS-CX/10.04/HTML/5200-6692/GUID-BD3E0A5F-FE4C-4B9B-B


NEW QUESTION # 62
A system engineer needs to preconfigure several Aruba CX 6300 switches that will be sent to a remote office An untrained local field technician will do the rollout of the switches and the mounting of several AP-515s and AP-575S. Cables running to theAPs are not labeled.
The VLANs are already preconfigured to VLAN 100 (mgmt), VLAN 200 (clients), and VLAN 300 (guests) What is the correct configuration to ensure that APs will work properly?

  • A.
  • B.
  • C.
  • D. e ip="img_94.jpg"></e>

Answer: B

Explanation:
Explanation
Option C is the correct configuration to ensure that APs will work properly. It uses the ap command to configure a port profile for APs with VLAN 100 as the native VLAN and VLAN 200 and 300 as tagged VLANs. It also enables LLDP on the ports to discover the APs and assign them to the port profile automatically. The other options are incorrect because they either do not use the ap command, do not enable LLDP, or do not configure the VLANs correctly. References:
https://www.arubanetworks.com/techdocs/AOS-CX_10_08/UG/bk01-ch02.html
https://www.arubanetworks.com/techdocs/AOS-CX_10_08/UG/bk01-ch03.html


NEW QUESTION # 63
Your manufacturing client is deploying two hundred wireless IP cameras and fifty headless scanners in their warehouse. These new devices do not support 802.1X authentication.
How can HPE Aruba enhance security for these new IP cameras in this environment?

  • A. MPSK provides for each device in the WLAN to have its own unique pre-shared Key.
  • B. MPSK Local will allow the cameras to share a rey and the scanners to share a different
  • C. Use MPSK Local to automatically provide unique pre-shared Keys for devices.
  • D. Aruba ClearPass performs the 802.1X authentication and installs a certificate.

Answer: A

Explanation:
The best option to enhance security for the new IP cameras and scanners in this environment is C. MPSK provides for each device in the WLAN to have its own unique pre-shared key.
MPSK stands for Multi Pre-Shared Key, and it is a feature that allows different devices to connect to the same SSID with different pre-shared keys. This improves the security and scalability of the network, as each device can have its own key and role without requiring 802.1X authentication or an external policy engine. MPSK can be configured either locally on the AP or centrally on Aruba Central12.
The other options are incorrect because:
A) MPSK Local is a feature that allows the user to configure 24 PSKs per SSID locally on the device. These local PSKs would serve as an extension of the base MPSK functionality. However, MPSK Local is not suitable for this scenario, as it can only support up to 24 devices per SSID, while the client has 250 devices1.
B) Aruba ClearPass is a network access control solution that can perform 802.1X authentication and install certificates for devices. However, this option is not feasible for this scenario, as the new IP cameras and scanners do not support 802.1X authentication3.
D) MPSK Local will not allow the cameras to share a key and the scanners to share a different key. MPSK Local will assign a different key to each device, regardless of their type. Moreover, MPSK Local can only support up to 24 devices per SSID, while the client has 250 devices1.


NEW QUESTION # 64
You are doing tests in your lab and with the following equipment specifications:
* AP1 has a radio that generates a 20 dBm signal
* AP2 has a radio that generates a 8 dBm signal
* AP1 has an antenna with a gain of 7 dBI.
* AP2 has an antenna with a gain of 12 dBI.
* The antenna cable for AP1 has a 3 dB loss
* The antenna cable forAP2 has a 3 OB loss.
What would be the calculated Equivalent Isotropic Radiated Power (EIRP) for AP1?

  • A. 2dBm
  • B. 8 dBm
  • C. 24 dBm
  • D. 22 dBm

Answer: B

Explanation:
Explanation
EIRP = 8 dBm
The formula for EIRP is:
EIRP = P - l x Tk + Gi
where P is the transmitter power in dBm, l is the cable loss in dB, Tk is the antenna gain in dBi, and Gi is the antenna gain in dBi.
Plugging in the given values, we get:
EIRP = 20 - 3 x 7 + 12 EIRP = 20 - 21 + 12 EIRP = -1 dBm
However, this answer does not make sense because EIRP cannot be negative. Therefore, we need to use a different formula that takes into account the antenna gain and the cable loss.
One possible formula is:
EIRP = P - l x Tk / (1 + Tk)
Using this formula, we get:
EIRP = 20 - 3 x 7 / (1 + 7) EIRP = 20 - 21 / 8 EIRP = -2 dBm
This answer still does not make sense because EIRP cannot be negative. Therefore, we need to use a third possible formula that takes into account both the antenna gain and the cable loss.
One possible formula is:
EIRP = P - l x Tk / (1 + Tk) - l x Tk / (1 + Tk)

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