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Title: 100% Pass 2026 Marvelous 3V0-25.25: Advanced VMware Cloud Foundation 9.0 Network [Print This Page]

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Title: 100% Pass 2026 Marvelous 3V0-25.25: Advanced VMware Cloud Foundation 9.0 Network
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VMware Advanced VMware Cloud Foundation 9.0 Networking Sample Questions (Q11-Q16):NEW QUESTION # 11
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?
Answer: A
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 # 12
In an NSX environment, an administrator is observing low throughput and intermittent congestion between the Tier-0 Gateway and the upstream physical routers. The environment was designed for high availability and load balancing, using two Edge Nodes deployed in Active/Active mode. The administrator enables ECMP on the Tier-0 gateway, but the issues persist. Which action would address low throughput and congestion?
Answer: B
Explanation:
Comprehensive and Detailed 250 to 350 words of Explanation From VMware Cloud Foundation (VCF) documents:
When aVMware Cloud Foundation (VCF)environment experiences North-South congestion at theTier-0 Gateway, it typically indicates that the processing capacity of the existingNSX Edge Nodeshas been reached.
In anActive/Activeconfiguration, the Tier-0 gateway utilizesEqual Cost Multi-Pathing (ECMP)to distribute traffic across all available Edge nodes in the cluster.
If a two-node Edge cluster is saturated despite ECMP being enabled, the standard "Scale-Out" procedure is to deploy additional Edge nodes(Option D). NSX supports up to8 Edge nodesin a single cluster for a Tier-0 gateway. By adding more nodes, the administrator increases the total number of CPU cores dedicated to the DPDK (Data Plane Development Kit) packet processing engine. Each additional node provides more
"bandwidth lanes" for the ECMP hash to utilize, effectively multiplying the aggregate throughput capability of the North-South exit point.
Option A is incorrect because "edgeless" Tier-1 gateways (Distributed Routers only) improve East-West performance by keeping traffic on the ESXi hosts, but they do not help with North-South traffic that must eventually hit a Tier-0 Service Router on an Edge. Option B (Disabling NAT) might reduce CPU overhead slightly, but it doesn't solve a fundamental capacity bottleneck and is often not an option due to architectural requirements. Option C (Adding a vNIC) does not increase the underlying compute/DPDK processing power of the Edge VM and can sometimes complicate the load-balancing hash.
In VCF operations, this expansion is handled via theSDDC Manager, which can automate the addition of new Edge nodes to an existing cluster, ensuring they are configured symmetrically with the correct uplink profiles and BGP peering sessions. This horizontal scaling is the verified method for resolving congestion in high-demand VCF networking environments.

NEW QUESTION # 13
During a design review, the administrator is asked to explain which underlying technology enables the NSX Edge to perform fast packet processing and achieve near line-rate performance for Virtual Network Functions (VNFs). Which technology is leveraged in the NSX Edge for fast packet processing?
Answer: D
Explanation:
Comprehensive and Detailed 250 to 350 words of Explanation From VMware Cloud Foundation (VCF) documents:
TheNSX Edgeis the workhorse of the VMware Cloud Foundation networking stack, handling demanding tasks like Geneve encapsulation, NAT, Firewalling, and BGP routing. To achieve the throughput required for modern data centers-often exceeding 10Gbps or even 40Gbps per node-NSX leverages theData Plane Development Kit (DPDK).
Traditional packet processing in a standard Linux or Unix kernel is often a bottleneck. The kernel must handle interrupts, context switching between user space and kernel space, and complex buffer management for every packet. This "overhead" limits the speed at which a CPU can move packets.DPDKchanges this by bypassing the standard kernel networking stack entirely. It operates inUser Spaceand uses a "polling" mechanism rather than an "interrupt-driven" one.
In an NSX Edge VM or Bare Metal node, specific CPU cores are dedicated to the DPDK process (often called theDatapathorFP-Main). these cores "spin" at 100% utilization, constantly checking the NICs for new packets. Because there is no context switching and the process has direct access to the network hardware buffers, the Edge can process millions of packets per second (Mpps) with extremely low latency.
WhileNUMA(Option C) is a hardware architecture that NSX is "aware" of to optimize memory access, and Intel Speed Step/AMD Power Now (Options B and D) are power management features,DPDKis the actual software technology that enables the "fast packet processing" capability of the VCF networking solution. This is why VMware documentation emphasizes the importance of ensuring that Edge VMs are sized correctly with enough "High-Performance" cores to support the intended DPDK throughput.

NEW QUESTION # 14
An administrator is creating NSX segments in an environment. The NSX segment on an ESX Host is not realized. To troubleshoot the issue, the administrator needs to track the communication of components in the environment.
Drag and drop the component to the appropriate location in the diagram to track the path from desired state to completed state.

Answer:
Explanation:

Explanation:
Answer Area Placement:
* NSX Manager Top-Left Boxolicy
* NSX Manager Top-Middle Box:Manager
* NSX Manager Top-Right Box:CCP (Central Control Plane)
* NSX Manager Bottom Box:APH (Asynchronous Proxy Handler)
* ESXi Host Top Box:NSX-Proxy
* ESXi Host Bottom Box:nsxt-vdl2
InVMware Cloud Foundation (VCF)and NSX architectures, the realization of a logical object (like a segment) involves a multi-step communication flow across different management and control plane layers.
The Management Plane (NSX Manager)
* Policy:The entry point where the "Desired State" is defined by the user or automation.
* Manager:Receives the policy, validates it, and stores it in the management database.
* CCP (Central Control Plane)rocesses the logical configuration and computes the actual instructions needed for the data plane.
* APH (Asynchronous Proxy Handler):Acts as a broker on the NSX Manager, responsible for pushing these instructions down to the transport nodes viaNSX RPC TCP 1234(Management) andNSX RPC TCP 1235(Control).
The Local Control Plane (ESXi Host)
* NSX-Proxy:A local agent on the ESXi host that maintains a persistent connection to the APH. It receives the instructions and ensures the "Local Control Plane" state matches the "Central Control Plane" intent.
* nsxt-vdl2:The final component in the chain. It interacts directly with the ESXi kernel modules to program the Virtual Distributed Switch (VDS) and realize the segment on the host. Once this step is finished, the segment moves to the"Completed State"and is ready for use.

NEW QUESTION # 15
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 # 16
......
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Author: maryjoh570    Time: 12 hour before
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