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Nokia SRAN-Radio-Network-Performance-Optimization Exam Syllabus Topics:

SectionObjectives
LTE/NR Performance Optimization- Optimization techniques
  • 1. Scheduling and resource allocation optimization
    • 2. Handover optimization
      Troubleshooting and Performance Analysis- Network issue identification and resolution
      • 1. Performance degradation root cause analysis
        • 2. Fault analysis workflows
          SRAN Architecture Overview- SRAN network structure and components
          • 1. Radio access network elements overview
            • 2. LTE/NR integration principles
              Radio Network Performance Fundamentals- Key performance indicators (KPIs)
              • 1. Throughput and latency KPIs
                • 2. Accessibility, retainability, and mobility KPIs
                  RF Optimization Principles- Coverage and capacity optimization
                  • 1. Coverage analysis and enhancement
                    • 2. Interference analysis and mitigation

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                      New New SRAN-Radio-Network-Performance-Optimization Test Book | Efficient SRAN-Radio-Network-Performance-Optimization Reliable Exam Tutorial: MN: NCSS NPS - SRAN Radio Network Performance Optimization Certification Exam | GS40-NPS-SRPER-E-S03-2510

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                      Nokia MN: NCSS NPS - SRAN Radio Network Performance Optimization Certification Exam | GS40-NPS-SRPER-E-S03-2510 Sample Questions (Q23-Q28):

                      NEW QUESTION # 23
                      Which of the following statements does not apply to mmWave radio propagation ?

                      Answer: A

                      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 # 24
                      What is the role of admission control in 5G networks ?

                      Answer: C


                      NEW QUESTION # 25
                      In a high-mobility network, the maximum cell size must be restricted to 33 km . Which PRACH format and restricted-set type should be used?

                      Answer: A

                      Explanation:
                      The correct answer is Format 1 / Type B .
                      For PRACH planning, the selected preamble format must support the required cell radius. Format 0 is too short for a 33 km cell because it is typically suitable only up to around 14.5 km . Format 2 is also not suitable because its practical maximum cell radius is around 29.5 km , which is below the required 33 km . Therefore, a longer PRACH format is needed.
                      Because the scenario mentions high mobility , an unrestricted PRACH set is not preferred. High-mobility environments require a restricted set to handle Doppler effects and reduce ambiguity in PRACH preamble detection. Between the restricted-set options, Type B is the correct choice for this 33 km high-mobility case.
                      A matching Nokia-style question source also lists this exact scenario with Format 1 / Type B as option A.


                      NEW QUESTION # 26
                      Single Network Slice Selection Assistance Information , or S-NSSAI , identifies a network slice. Which of the following statements are correct regarding NSSAI ? Refer to the diagram for basic information.

                      Answer: D

                      Explanation:
                      The correct answer is D: A, B, C, and D .
                      In 5G network slicing, S-NSSAI identifies a single network slice. It is composed of:
                      SST , or Slice/Service Type
                      SD , or Slice Differentiator
                      Statement A is correct.
                      The combination of SST + SD can uniquely identify a slice. For example, two slices may both use SST 1 for eMBB/MBB-type service, but different SD values can separate them for different enterprises, tenants, or service groups.
                      Statement B is correct.
                      SST is mandatory. It is an 8-bit numeric field that indicates the expected slice/service behavior, such as eMBB, URLLC, or mMTC.
                      Statement C is correct.
                      SD is optional. It is a 24-bit field used to differentiate multiple slices that may share the same SST.
                      Statement D is correct.
                      SST may use standardized values, such as SST 1 for eMBB, SST 2 for URLLC, and SST 3 for mMTC/MIoT.
                      It may also use operator-specific or non-standardized values depending on deployment requirements.


                      NEW QUESTION # 27
                      Evaluate the impact of extended FR2 cell range on power consumption.

                      Answer: B

                      Explanation:
                      The correct answer is C .
                      In FR2/mmWave , uplink coverage is often the limiting factor because UE transmit power is much lower than gNodeB transmit power, and mmWave propagation suffers from high path loss and blockage. Ericsson's mmWave coverage discussion also notes that high-band coverage is limited by uplink signal quality and high- band propagation characteristics.
                      When the FR2 cell range is extended, UEs farther from the serving cell must transmit uplink signals over a more difficult radio path. This usually requires higher UE transmit power, more robust MCS, more repetitions or retransmissions, and potentially longer uplink activity. As a result, UE battery consumption can increase.
                      Therefore, extended FR2 range generally:
                      Increases power consumption because UEs need more energy to transmit uplink signals.


                      NEW QUESTION # 28
                      ......

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