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Nokia 4A0-F10 Exam Syllabus Topics:

SectionObjectives
Topic 1: Access Network- Quality of Service (QoS) fundamentals
- Optical Line Terminal (OLT) functionality
- Access network architecture
- Multicast protocols for video distribution
Topic 2: Introduction to Fixed Networks- Fixed Wireless Access (FWA)
- FTTx concepts and solutions
- FTTH concepts and solutions
- Broadband network fundamentals
- Broadband access services
Topic 3: Broadband Services- Lightspan service components
- Voice services
- Intent mapping to network layers
- Intent-Based Networking (IBN)
- Value-added and triple-play services
- IPTV services
- High-speed Internet services
Topic 4: Fixed Networks Management- NFV and SDN fundamentals
- Corteca home device controller
- NETCONF and YANG
- Nokia SDAN solution
- IPFIX telemetry collection
- Altiplano SDAN Controller
Topic 5: Home Network- Wi-Fi fundamentals
- Home network connectivity
- Home network devices
- Home network device management

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Nokia Fixed Networks Fundamentals Sample Questions (Q22-Q27):

NEW QUESTION # 22
What is the primary purpose of vectoring in a DSL access network?

Answer: D

Explanation:
DSL vectoring is primarily used to reduce or cancel far-end crosstalk between copper pairs operating within the same cable bundle. Crosstalk can significantly reduce the attainable data rate, particularly with high-frequency technologies such as VDSL2. A vectoring system measures interference among coordinated lines and generates compensating signals that counteract the crosstalk. This can improve connection stability and allow lines to operate closer to their theoretical performance. Vectoring is different from bonding. Bonding combines the capacity of multiple physical copper pairs to increase the aggregate subscriber bitrate. Vectoring also does not divide optical signals because that is the function of a splitter in a passive optical network. Its effectiveness generally depends on coordinating the relevant DSL lines through compatible access equipment.


NEW QUESTION # 23
A YANG model specifies that a configuration leaf can contain an integer from 1 through 4094. What is the principal benefit of this restriction?

Answer: B

Explanation:
YANG can define data types, ranges, patterns, mandatory nodes, default values, and relationships between configuration elements. A range restriction allows management software and network devices to verify that a submitted value falls within the permitted limits. For example, restricting a VLAN-related integer to an appropriate range prevents clearly invalid values from being accepted. This model-driven validation reduces configuration errors and makes automation more predictable. A passive optical splitter has no processing capability and cannot correct invalid configuration. The restriction also does not convert a value into an Ethernet frame or prevent NETCONF access. Instead, NETCONF can carry configuration data structured according to the YANG model, and the server can reject an <edit-config> request when the proposed data violates applicable schema constraints.


NEW QUESTION # 24
Which Corteca component is intended primarily for use by the subscriber during Wi-Fi installation and management?

Answer: D

Explanation:
The Corteca mobile application provides subscriber-facing capabilities that can support self-installation and home Wi-Fi management. Depending on the enabled service, the subscriber can receive installation guidance, view the home network, manage connected devices, and perform supported troubleshooting or configuration tasks. The service provider uses other Corteca platform components for centralized service management, visibility, and operational control. An OLT network termination card provides access-node network connectivity and is not a subscriber application. An IPFIX collector receives traffic-flow records, while a NETCONF candidate datastore holds proposed device configuration before it is committed. Separating subscriber-facing and operator-facing functions allows the provider to offer controlled self-service capabilities without exposing the complete network-management environment or low-level access-device configuration to the end user.


NEW QUESTION # 25
What does hardware abstraction provide in a disaggregated access network?

Answer: B

Explanation:
Hardware abstraction separates higher-level control and management functions from many platform-specific implementation details. It can provide controllers and applications with consistent models or interfaces for operating different supported hardware platforms. This makes automation, service development, and multivendor management more practical because applications do not need to reproduce every low-level procedure for each device. Abstraction does not require all platforms to contain identical components, nor does it eliminate actual differences in capacity, features, or operational constraints. Those differences must still be represented where relevant. It also does not make active access equipment passive. In a disaggregated access architecture, software is divided into functional modules, and standardized or well-defined interfaces allow those modules to interact with abstracted device resources and with higher-level orchestration or assurance applications.


NEW QUESTION # 26
Where should multicast traffic ideally be replicated in a bandwidth-efficient access network?

Answer: D

Explanation:
Multicast is bandwidth-efficient because one stream can be transported across shared network sections and replicated only where paths diverge toward interested receivers. Routers and multicast-aware switching functions use membership and forwarding information to determine which interfaces require a copy. This approach avoids sending a separate end-to-end unicast stream for every viewer and avoids flooding the content to subscribers who did not join the group. IGMP reports communicate receiver membership on IPv4 access networks, while IGMP snooping helps Layer 2 devices restrict forwarding to appropriate ports. Replicating content for every possible subscriber at the source would remove much of multicast's scaling advantage. Likewise, transmitting every stream on every access port would waste bandwidth and could expose receivers to large amounts of unwanted traffic.


NEW QUESTION # 27
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