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[Hardware] Valid Dumps NSE5_FSW_AD-7.6 Ebook & Valid Braindumps NSE5_FSW_AD-7.6 Ppt

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【Hardware】 Valid Dumps NSE5_FSW_AD-7.6 Ebook & Valid Braindumps NSE5_FSW_AD-7.6 Ppt

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Fortinet NSE 5 - FortiSwitch 7.6 Administrator Sample Questions (Q21-Q26):NEW QUESTION # 21
You are managing FortiSwitch ports from a FortiGate device with multiple VDOMs. Which two methods can you use to assign FortiSwitch ports to VDOMs? (Choose two answers)
  • A. Using a virtual port pool (VPP) to create virtualized ports that can be assigned to different VDOMs
  • B. Use FortiGate policies to control inter-VDOM traffic for FortiSwitch ports
  • C. Assigning the port directly to a specific VDOM for dedicated physical isolation
  • D. Use interface role mapping to dynamically assign FortiSwitch ports to VDOMs based on Dynamic Host Configuration Protocol (DHCP) scope
Answer: A,C
Explanation:
According to theFortiOS 7.6 Administration Guideand theFortiSwitch 7.6 FortiLink Guide, managing FortiSwitch units in a multi-VDOM environment allows for granular control over physical switch resources.
By default, when a FortiSwitch is discovered and authorized via FortiLink, its ports reside in the same VDOM as the FortiLink interface (typically the root or a dedicated management VDOM).
To allocate these ports to other VDOMs, administrators have two primary methods. The first method isdirect assignment(Option A). Using the FortiGate CLI or GUI, an administrator can export a specific physical port directly to a target VDOM. For example, the command set export-to <VDOM_name> under the config switch- controller managed-switch port settings physically isolates that port for use only by the specified VDOM.
This is ideal for multi-tenant scenarios where a specific physical connection must be dedicated to a single business unit.
The second method involves using aVirtual Port Pool (VPP)(Option D). This method provides a layer of virtualization for switch ports. An administrator first creates a pool (VPP) in the management VDOM and assigns physical ports to it. Then, from the tenant VDOM, an administrator can "request" a port from that specific pool. This allows for a more flexible "shared" infrastructure where ports are not permanently tethered to a single VDOM until they are claimed from the pool. Both methods ensure that traffic remains logically and physically isolated between VDOMs, supporting the security requirements of complex enterprise deployments. Options B and C are incorrect as they relate to traffic routing and device identification rather than the foundational assignment of hardware ports to virtual domains.


NEW QUESTION # 22
You are configuring VLANs on a FortiSwitch device managed by FortiGate. Which two statements accurately describe VLAN assignment requirements and behavior on FortiSwitch ports? (Choose two answers)
  • A. Untagged VLAN applies to egress traffic only.
  • B. VLAN assignments must be configured directly on the FortiSwitch.
  • C. You can assign only one native VLAN on a port.
  • D. Untagged defines the list of VLANs that are allowed on the port for both ingress and egress traffic.
Answer: A,C
Explanation:
According to theFortiSwitchOS 7.6 Administration Guideand theFortiSwitch 7.6 Study Guide, understanding how VLANs are processed on a switch port is fundamental to network segmentation. A FortiSwitch port behaves differently depending on whether traffic is entering (ingress) or leaving (egress) the interface.
First,you can assign only one native VLAN on a port (Option C). The Native VLAN (often called the PVID or Port VLAN ID) is the default internal ID assigned to any untagged frames arriving at the port. In a managed environment, this is typically set via the FortiGate's switch controller. By design, a single physical interface can only belong to one primary broadcast domain for untagged ingress traffic to ensure there is no ambiguity in the switch's internal forwarding logic.
Second, theuntagged VLAN setting applies to egress traffic only (Option B). While the "Allowed VLANs" list defines which tagged traffic can pass through the port, the "Untagged VLANs" list specifies which of those VLAN tags should beremovedby the switch before the frame is transmitted out of the physical port.
This is crucial for connecting devices that do not support 802.1Q tagging, such as standard PCs or printers.
Regarding the incorrect options:Option Ais incorrect because the "Untagged" list does not define ingress rules; ingress is governed by the Native VLAN for untagged packets and the Allowed list for tagged packets.
Option Dis incorrect because, in a managed FortiLink environment, all VLAN assignments should be performed through theFortiGate's Switch Controllerto ensure centralized management and consistency.

NEW QUESTION # 23
Refer to the configuration:
Which two conditions does FortiSwitch need to meet to successfully configure the options shown in the exhibit above? (Choose two.)
  • A. FortiSwitch would need to be rebooted.
  • B. The Dort full speed prior to the split was 100G QSFP+.
  • C. The split port can be assigned to a native VLAN.
  • D. The FortiSwitch model is equipped with a maximum of 54 interfaces
Answer: A,D

NEW QUESTION # 24
(Full question statement start from here)
Refer to the exhibit.

You run the command diagnose switch-controller switch-info loopguard access-1 and see that theMAC-Move column displays a value of0forport1.
What does this indicate? (Choose one answer)
  • A. Port1 will shut down if a loop occurs on any VLAN.
  • B. Loop guard is disabled on port1.
  • C. Port1 is not being monitored by loop guard.
  • D. The MAC move feature is not enabled.
Answer: D
Explanation:
In FortiSwitchOS 7.6,Loop Guardis a Layer 2 loop detection mechanism primarily designed to protect access ports from unintended network loops. In itsoriginal implementation, Loop Guard only detected loops on the native VLAN, which limited its effectiveness in environments using multiple tagged VLANs. To address this limitation, Fortinet enhanced Loop Guard by introducing theMAC move detection feature, as documented in the FortiSwitchOS 7.6 Administrator Guide.
TheMAC move optioninstructs the FortiSwitch to monitor for repeated MAC address flapping events across ports or VLANs. Such MAC movement is a strong indicator of a Layer 2 loop. However, this enhanced detection mechanism isdisabled by defaultand must be explicitly enabled by configuring aMAC move threshold greater than zero.
According to the FortiSwitchOS 7.6 Administrator Guide (page 164), enabling MAC move allows Loop Guard to detect loops beyond the native VLAN. Furthermore, the guide explicitly states (page 166) thata MAC-Move value of 0 indicates that the MAC move feature is not enabled. This means the switch is not monitoring MAC address movement as part of its loop detection logic, even though Loop Guard itself may still be enabled on the port.
Therefore, a MAC-Move value of 0 does not indicate that Loop Guard is disabled or inactive, nor does it imply VLAN-wide port shutdown behavior. It strictly confirms thatMAC move detection has not been enabled, makingOption Cthe correct and fully verified answer based on FortiSwitchOS 7.6 documentation.

NEW QUESTION # 25
Exhibit.
LAG and MCLAG are used to increase the available network bandwidth and enable redundancy. How does spanning tree protocol see MCLAG and LAG if they are configured based on the physi-cal view shown in the exhibit? (Choose two)
  • A. Switch 1. Switch 2, and Switch 3 are seen as one MCLAG peer group
  • B. Switch 3 and Switch 4 uplinks are treated as single interfaces.
  • C. Switch 3 and switch 4 are seen as one MCLAG switch client
  • D. Switch 1 and Switch 2 both seen as one single switch.
Answer: B,D
Explanation:
According to theFortiSwitchOS 7.6 Administration Guideand theFortiSwitch 7.6 Study Guide, Multichassis Link Aggregation (MCLAG) and standard Link Aggregation Groups (LAG) are designed to provide link-level and node-level redundancy while presenting a simplified logical view to the Spanning Tree Protocol (STP).
In the provided topology:
* Logical Switch View (Option D):Switch 1 and Switch 2 are configured asMCLAG peersconnected via an Inter-Chassis Link (ICL). From the perspective of downstream devices and STP, these two physical switches act as a single logical entity. This prevents STP from seeing a loop between the two switches and the downstream Switch 3, as the redundant physical paths are bundled into a single logical MCLAG trunk.
* Logical Interface View (Option B):The exhibit shows Switch 4 connected to Switch 3 via two physical links bundled into aLAG, and Switch 3 connected to the MCLAG peers via split links. In both cases, STP treats the aggregated physical links as asingle logical interface. Because the multiple physical paths are managed by the Link Aggregation Control Protocol (LACP) as one trunk, STP does not block individual ports to prevent loops; instead, it sees one high-bandwidth path.
Regarding the incorrect options:Option Ais false because Switch 3 is an MCLAGclient, not a peer in the group.Option Cis incorrect because Switch 3 and Switch 4 are separate physical and logical nodes; they are not seen as a single client entity by the core.

NEW QUESTION # 26
......
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