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[General] 100% Pass Quiz 2026 VMware High Pass-Rate 3V0-25.25: Advanced VMware Cloud Found

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【General】 100% Pass Quiz 2026 VMware High Pass-Rate 3V0-25.25: Advanced VMware Cloud Found

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VMware Advanced VMware Cloud Foundation 9.0 Networking Sample Questions (Q31-Q36):NEW QUESTION # 31
The administrator is working to ascertain the encapsulation of GENEVE by reviewing the capture on Wireshark.
The administrator instructed VM-1 to send a continuous ICMP request directed at VM-2.
Click to highlight where the administrator should observe the GENEVE encapsulated packet.

Answer:
Explanation:

Explanation:
The administrator should click thevmnic0interface on theESX-1 Host.
In aVMware Cloud Foundation (VCF)environment, theGENEVE (Generic Network Virtualization Encapsulation)protocol is the industry-standard tunnel format used by NSX to create an overlay network.
This protocol allows Layer 2 traffic from virtual machines to be "tunneled" over a Layer 3 physical IP fabric, enabling workloads to communicate as if they were on the same segment even when separated by physical routers.
When VM-1 on ESX-1 sends an ICMP request to VM-2 on ESX-2, the packet starts as a standard Ethernet frame at the virtual machine'svnic1. At this stage, the packet contains no encapsulation. As the frame enters theVirtual Distributed Switch (VDS)and hits theTunnel End Point (TEP), the host's kernel performs the encapsulation process. The TEP adds a GENEVE header, a UDP header (port 6081), and an outer IP header.
Thevmnic0(physical NIC) on the source host (ESX-1) is the specific "egress" point where this transformation is complete. A packet capture taken at this physical interface will show the "Outer IP" address of the source TEP and destination TEP, with the original ICMP packet hidden inside the GENEVE payload. If the administrator were to click on the VM's vnic, they would only see standard ICMP. By selecting thevmnic0, the administrator captures the traffic as it is placed onto the physical wire, which is the verified location to troubleshoot MTU issues, encapsulation errors, or physical fabric connectivity in a VCF environment.

NEW QUESTION # 32
An NSX Manager cluster has failed. The administrator deployed a new NSX Manager using the latest version and attempted to restore from a backup, but the restore operation failed. What would an administrator do to recover the cluster?
  • A. Use SDDC Manager to replace NSX Manager.
  • B. Deploy an NSX Manager that matches the backup's build.
  • C. Edit the backup passphrase to match the new build.
  • D. Use the NSX restore API instead of the UI.
Answer: B
Explanation:
Comprehensive and Detailed 250 to 350 words of Explanation From VMware Cloud Foundation (VCF) documents:
A critical requirement for the backup and restore process inVMware NSX(and by extension, VCF) is version parity. The NSX Manager backup contains the database schema, configuration files, and state information specific to the version of the software that was running at the time the backup was taken.
When performing a restore into a "clean" environment, the NSX documentation explicitly states that the target NSX Manager appliancemust be of the exact same build versionas the appliance that generated the backup.
If an administrator attempts to restore a backup from version 4.1.x onto a newly deployed manager running version 4.2.x or 9.0 (as implies by "latest version"), the restore process will fail because the database schema of the newer version is incompatible with the older data structure.
In aVCF environment, whileSDDC Manager(Option B) handles the lifecycle and replacement of failed nodes, the actual "Restore from Backup" workflow is an NSX-native operation. If the entire cluster is lost, the recovery procedure involves:
* Identifying the build number from the backup metadata.
* Deploying a single "Discovery" node of that exact build.
* Pointing that node to the backup repository (SFTP/FTP).
* Executing the restore.
Once the primary node is restored to the correct version, the administrator can then add additional nodes to reform the cluster. Attempting to use the API (Option C) or changing the passphrase (Option A) will not bypass the fundamental requirement for version alignment between the backup file and the installed binary.

NEW QUESTION # 33
An administrator is troubleshooting a BGP connectivity issue on a Tier-0 Gateway (Active/Active). The Tier-
0 has the following configuration:
* Uplink VLAN 100: 192.168.100.0/24
* Uplink VLAN 101: 192.168.101.0/24
* BGP neighbors configured: 192.168.100.1 and 192.168.101.1
* A single static default route (0.0.0.0/0) exists with next-hop 192.168.100.1.
Symptoms observed on both Edge Nodes:
* Get BGP neighbors -> both neighbors stuck in Idle (Connect) - "No route to peer"
* Ping to 192.168.100.1 and 192.168.101.1 succeeds from the Edge nodes
* Get route shows the default route present only on VLAN 100 interface (fp-eth0), missing on VLAN 101 (fp- eth1) What is the root cause of both BGP sessions remaining in Idle state?
  • A. The ToR routers do not have routes back to the Edge uplink interfaces.
  • B. Multi-hop eBGP is required when using two VLANs.
  • C. The static default route Scope is set only to the uplink VLAN 100 segment.
  • D. BGP authentication mismatch between Tier-0 and ToR routers.
Answer: C
Explanation:
Comprehensive and Detailed 250 to 350 words of Explanation From VMware Cloud Foundation (VCF) documents:
InVMware NSXnetworking, the Tier-0 Gateway'sRouting Table(RIB) is the definitive source for determining how to reach BGP neighbors. A common point of confusion occurs when an administrator can
"ping" a neighbor but the BGP state remainsIdleorConnectwith a "No route to peer" error.
This symptom specifically points to the"Scope"setting of a static route. In NSX, when a static route (such as the default route 0.0.0.0/0) is created, the administrator can define theScopeto be a specific uplink segment or interface. If the scope is set exclusively to theVLAN 100segment, the Tier-0 Gateway will only install that route into the forwarding table for the Service Router (SR) component associated with the VLAN 100 interface.
Because the default route is the only path the Tier-0 has to reach non-local networks (or even other local subnets not directly attached), the BGP process for the neighbor at192.168.101.1(VLAN 101) checks the routing table for a path. Since the only available route is scoped strictly to VLAN 100, the Tier-0 determines it has "No route" to reach the neighbor in VLAN 101. BGP requires a valid entry in the routing table for the neighbor's IP before it will even attempt to initiate the TCP three-way handshake on port 179.
The fact that pings succeed is due to pings often being tested from the specific interface (e.g., ping
192.168.101.1 -I fp-eth1), which bypasses the general routing table logic that the BGP control plane must follow. To resolve this, the static route scope should be expanded to include all relevant uplink segments or left as "All Uplinks," ensuring that the Tier-0 recognizes valid egress paths for neighbors on both VLAN 100 and VLAN 101.

NEW QUESTION # 34
An administrator has observed an NSX Local Manager (LM) outage at the secondary Site. However, the NSX Global Manager (GM) in secondary Site remains operational. What happens to data plane operations and policy enforcement at the secondary site?
  • A. All traffic is blocked until secondary site LM recovers.
  • B. The data plane operates normally until LM recovery and reconnection.
  • C. Secondary site must failover all workloads to Primary site.
  • D. Only local policies work; global policies cease to apply on the secondary site.
Answer: B
Explanation:
Comprehensive and Detailed 250 to 350 words of Explanation From VMware Cloud Foundation (VCF) documents:
The architecture ofNSX Federationwithin a VCF Multi-Site design is built upon a separation of theControl Planeand theData Plane. This "decoupled" architecture ensures high availability and resiliency even when management components become unavailable.
In NSX Federation, theGlobal Manager (GM)handles the configuration of objects that span multiple locations, while theLocal Manager (LM)is responsible for pushing those configurations down to the local Transport Nodes (ESXi hosts and Edges) within its specific site. When a configuration is pushed, the Local Manager communicates with theCentral Control Plane (CCP)and subsequently theLocal Control Plane (LCP)on the hosts.
If an NSX Local Manager goes offline, the "Management Plane" for that site is lost. This means no new segments, routers, or firewall rules can be created or modified at that site. However, the existing configuration is already programmed into theData Plane(the kernels of the ESXi hosts and the DPDK process of the Edge nodes).
According to VMware's "NSX Multi-Location Design Guide," the data plane remains fully operational during a Management Plane outage. Existing VMs will continue to communicate, BGP sessions on the Edges will remain established, and Distributed Firewall (DFW) rules will continue to be enforced based on the last known good configuration state cached on the hosts. The data plane does not require constant heartbeats from the Local Manager to forward traffic. Therefore, operations continue normally "headless" until the LM is restored and can resume synchronization with the Global Manager and local hosts. Failover to a primary site (Option D) is only necessary if the actual data plane (hosts/storage) fails, not just the management components.

NEW QUESTION # 35
When using a DHCP Relay on a segment, which design restriction must be considered?
  • A. DHCP client requests cannot be relayed to the external DHCP servers.
  • B. DHCP settings, DHCP options, and static bindings cannot be configured on the segment.
  • C. DHCP Relay service is available to all the other segments in the network.
  • D. DHCP settings, DHCP options, and static bindings can be configured on the segment.
Answer: B
Explanation:
Comprehensive and Detailed 250 to 350 words of Explanation From VMware Cloud Foundation (VCF) documents:
InVMware Cloud Foundation (VCF)networking, IP address management within an NSX segment can be handled by either the native NSX DHCP server or by an external DHCP server. When an administrator chooses to use an existing external corporate DHCP infrastructure, they must configure aDHCP Relayon the logical segment.
The DHCP Relay works by intercepting the initial DHCP Discover broadcast from a workload VM and forwarding it (as a unicast packet) to the specified IP address of the external DHCP server. However, NSX enforces a strict mutual exclusivity in its configuration logic to prevent conflicts and unpredictable address assignments.
According to the "NSX-T Data Center Administration Guide," once a segment is configured to use aDHCP Relay profile, the native NSX DHCP capabilities for that specific segment are disabled. This means that DHCP settings, DHCP options, and static bindings cannot be configured on that segment(Option A). All such configurations, including IP reservations and scope options (like DNS or NTP), must be managed centrally on the external DHCP server.
Option C is incorrect because the UI will physically grey out or prevent the entry of native DHCP parameters once the Relay is selected. Option B is incorrect as the primary purpose of a Relay is precisely to forward requests to external servers. Option D is incorrect because a DHCP Relay is configured on a per-segment or per-gateway basis; it is not a "global" service that automatically covers all other segments in the network.
Therefore, the architectural trade-off when choosing a Relay is the shift of all management and binding logic to the external physical or virtual DHCP appliance.

NEW QUESTION # 36
......
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