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

SectionObjectives
RF Optimization Principles- Coverage and capacity optimization
  • 1. Interference analysis and mitigation
    • 2. Coverage analysis and enhancement
      Troubleshooting and Performance Analysis- Network issue identification and resolution
      • 1. Fault analysis workflows
        • 2. Performance degradation root cause analysis
          LTE/NR Performance Optimization- Optimization techniques
          • 1. Handover optimization
            • 2. Scheduling and resource allocation optimization
              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. Accessibility, retainability, and mobility KPIs
                    • 2. Throughput and latency KPIs

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                      Nokia MN: NCSS NPS - SRAN Radio Network Performance Optimization Certification Exam | GS40-NPS-SRPER-E-S03-2510 Sample Questions (Q13-Q18):

                      NEW QUESTION # 13
                      What is the mandatory prerequisite to implement DSS , or Dynamic Spectrum Sharing ?

                      Answer: B

                      Explanation:
                      The correct answer is D .
                      DSS allows LTE and 5G NR to share the same spectrum dynamically , instead of requiring a separate dedicated NR carrier. Therefore, dedicated NR spectrum is not mandatory. DSS is also not limited to TDD only; it is commonly used in FDD spectrum refarming scenarios as well. Public RAN references describe DSS as a mechanism where LTE and NR coexist in the same frequency band and share spectrum dynamically.
                      From an SRAN architecture point of view, the mandatory deployment condition is that the radio platform must support LTE and NR coexistence on the same radio resources. That requires RF module sharing or a DSS-capable shared radio configuration.
                      So the correct prerequisite is:
                      RF module sharing.


                      NEW QUESTION # 14
                      In NR SA Option 2, the UE is camped on an SA serving cell. An IRAT handover is triggered for a multi-QCI call, QCI 1 and QCI 6, due to weak coverage of the serving cell. What will happen to both QCIs during the IRAT handover toward LTE?

                      Answer: D

                      Explanation:
                      The correct answer is D.
                      In 5G SA Option 2, NR works independently with the 5G Core, but interworking with LTE/EPC can be supported for mobility continuity. When IRAT handover toward LTE is triggered due to weak NR coverage, the goal is to preserve the active services during mobility.
                      For a multi-QCI service:
                      QCI 1 normally represents the voice bearer, such as VoLTE/IMS voice continuity after movement to LTE.
                      QCI 6 normally represents a non-GBR data bearer.
                      During a supported IRAT handover from NR SA to LTE, both the voice bearer and data bearer can be transferred to LTE, assuming proper interworking, bearer mapping, and LTE coverage availability.
                      Option C is incorrect because IRAT mobility from NR SA to LTE is supported in properly configured networks. Option A is incorrect because the voice bearer is the most critical bearer to preserve. Option B is also not the best answer because the data bearer does not necessarily need to be released during IRAT handover.
                      Therefore, the expected result is:
                      Both QCI 1 voice and QCI 6 data continue on LTE.


                      NEW QUESTION # 15
                      Choose the correct statement from the options below.

                      Answer: D

                      Explanation:
                      The correct answer is B .
                      Beamforming is mainly about shaping and directing radio energy toward a UE or a target area. It improves coverage, SINR, and cell-edge performance by focusing the transmitted or received signal in a specific direction.
                      MIMO , or Multiple Input Multiple Output , uses multiple antenna paths to improve throughput, reliability, and spectral efficiency. MIMO can be used for spatial multiplexing, diversity, or beamforming depending on the antenna system and radio configuration.
                      Option A is incorrect because beamforming and MIMO are related but not the same.
                      Option C reverses the definitions.
                      Option D is incorrect because beamforming and MIMO are commonly used together, especially in Massive MIMO systems.
                      So the correct statement is:
                      Beamforming focuses on directing the signal, while MIMO focuses on utilizing multiple paths for data transmission.


                      NEW QUESTION # 16
                      In the context of mmWave deployments , what is the primary benefit of analog beamforming ?

                      Answer: A

                      Explanation:
                      The correct answer is A .
                      In mmWave systems, beamforming is essential because FR2 signals suffer from high path loss and blockage.
                      Analog beamforming uses fewer RF chains than fully digital beamforming, so it is cheaper and less complex in terms of RF hardware, power consumption, and implementation. Research and industry references explain that analog and hybrid beamforming architectures reduce the number of required ADCs/RF chains compared with fully digital beamforming, lowering cost and power complexity.
                      However, analog beamforming has limitations. It usually forms one beam, or a limited number of beams, at a time from a panel. Supporting multiple independent simultaneous beams and more UEs per sector is more associated with digital or hybrid beamforming, not pure analog beamforming.
                      Therefore, the primary benefit is:
                      Low cost and low complexity for coverage at higher mmWave bands.


                      NEW QUESTION # 17
                      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 # 18
                      ......

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