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| Section | Weight | Objectives |
|---|---|---|
| Mobility and Handover Optimization | 20% | - Inter-RAT mobility and optimization - Handover parameters and algorithms - Mobility robustness and optimization |
| Coverage and Capacity Optimization | 30% | - Capacity planning, load balancing and optimization - Interference analysis and mitigation techniques - Coverage analysis, tuning and optimization |
| Quality of Service and Resource Management | 15% | - Radio resource management and optimization - QoS parameters, scheduling and admission control |
| Advanced Optimization and SON Features | 10% | - Self-Organizing Networks (SON) use cases and optimization - Energy saving and advanced features |
| SRAN Performance Optimization Fundamentals | 25% | - Key performance indicators (KPIs) definition and measurement - Network performance monitoring and analysis tools - Performance optimization principles and methodology |
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NEW QUESTION # 24
Which of the following statements does not apply to mmWave radio propagation ?
Answer: C
Explanation:
The correct answer is C .
At mmWave / FR2 frequencies , radio propagation is more challenging than in low-band or mid-band spectrum. Diffraction becomes weaker, blockage is more severe, foliage attenuation is high, and building penetration loss is significant. This is why mmWave networks usually require dense site grids, line-of-sight or near-line-of-sight paths, and strong beamforming. Industry mmWave references consistently describe high path loss, high penetration loss, and the need for directional antenna systems to compensate for these losses.
Option C does not apply because water absorption and atmospheric absorption generally become more relevant at higher frequencies, not lower. Rain, humidity, and oxygen/water-vapor absorption are important considerations for mmWave link budgets.
So the statement that does not apply to mmWave propagation is:
Low water absorption at high frequencies.
NEW QUESTION # 25
At which mark are all conditions fulfilled for energy saving , so the cell will be switched off? Refer to the image below.
Answer: A
Explanation:
The correct answer is B , which corresponds to mark C in the diagram.
In the diagram, the energy-saving process follows these stages:
Before mark B , the cell is entering the power-saving period, but the required load condition has not yet been satisfied for the required duration.
At mark B , the measured load has gone below the configured threshold, but the cell is not switched off immediately. The system must confirm that the load remains below the required threshold for the configured time.
At mark C , the load has stayed below the required threshold for the required duration, shown as 5 minutes in the diagram. At this point, all conditions are fulfilled, and the cell can be switched off. The diagram also shows the state becoming:
energySavingState = energySaving
Marks D and E are already inside or near the later part of the power-saving period. Mark E is associated with operator suspension/exit behavior, not the initial moment when all switch-off conditions are first fulfilled.
NEW QUESTION # 26
In the context of radio capacity management , what is the significance of Scheduling Request periodicity ?
Answer: D
Explanation:
The correct answer is C .
Scheduling Request , or SR , is used by the UE to request uplink resources when it has uplink data to send.
The SR periodicity defines how often the UE gets an opportunity to send this scheduling request.
A shorter SR periodicity means the UE can request uplink resources more quickly, which improves uplink latency. However, it consumes more PUCCH/control-channel resources, reducing the number of UEs that can be efficiently supported.
A longer SR periodicity saves control-channel resources and can support more connected users, but it increases uplink access delay.
Therefore, SR periodicity is important because it creates a trade-off between:
Lower latency and higher connected-user capacity.
NEW QUESTION # 27
What is the role of admission control in 5G networks ?
Answer: C
NEW QUESTION # 28
A slice supporting sensors and smart meters would be categorized as:
Answer: C
Explanation:
The correct answer is A .
Sensors and smart meters are typical massive IoT use cases. They usually involve a very large number of devices sending small amounts of data, often with low mobility and low power requirements.
This type of traffic fits mMTC , or massive Machine Type Communications .
Why the other options are not correct:
URLLC is used for very low-latency and highly reliable services, such as industrial automation, remote control, or mission-critical applications.
eMBB is used for high-throughput broadband services, such as video, fixed wireless access, or enhanced mobile internet.
DNN is not a slice category. It means Data Network Name and identifies the data network the UE connects to, similar to APN in LTE.
Therefore, a slice supporting sensors and smart meters is categorized as:
mMTC.
NEW QUESTION # 29
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