Latest Nokia SRAN-Radio-Network-Performance-Optimization Cram Materials, SRAN-Radio-Network-Performance-Optimization Latest Test Vce

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

SectionObjectives
Topic 1: Troubleshooting and Performance Analysis- Network issue identification and resolution
  • 1. Fault analysis workflows
    • 2. Performance degradation root cause analysis
      Topic 2: RF Optimization Principles- Coverage and capacity optimization
      • 1. Interference analysis and mitigation
        • 2. Coverage analysis and enhancement
          Topic 3: Radio Network Performance Fundamentals- Key performance indicators (KPIs)
          • 1. Accessibility, retainability, and mobility KPIs
            • 2. Throughput and latency KPIs
              Topic 4: LTE/NR Performance Optimization- Optimization techniques
              • 1. Handover optimization
                • 2. Scheduling and resource allocation optimization
                  Topic 5: SRAN Architecture Overview- SRAN network structure and components
                  • 1. Radio access network elements overview
                    • 2. LTE/NR integration principles

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                      Free PDF High-quality Nokia - SRAN-Radio-Network-Performance-Optimization - Latest MN: NCSS NPS - SRAN Radio Network Performance Optimization Certification Exam | GS40-NPS-SRPER-E-S03-2510 Cram Materials

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                      Nokia MN: NCSS NPS - SRAN Radio Network Performance Optimization Certification Exam | GS40-NPS-SRPER-E-S03-2510 Sample Questions (Q17-Q22):

                      NEW QUESTION # 17
                      Consider that the UE is performing handover from LTE to NR with the help of features CB007742 / CB008731 . Referring to the picture below, at what stage can the handover be triggered from LTE to NR?

                      Answer: C

                      Explanation:
                      The correct answer is C: From Stage 3 .
                      In LTE-to-NR mobility, the handover or redirection decision is normally based on a combination of:
                      LTE serving-cell signal level becoming weak enough, and
                      NR neighbor-cell signal level becoming strong enough.
                      From the diagram:
                      In Stage 1 , LTE is still good and NR is still weak, so LTE-to-NR HO should not be triggered.
                      In Stage 2 , the NR neighbor signal is improving, but the required combined LTE/NR mobility condition is not yet fully satisfied.
                      In Stage 3 , the NR neighbor signal has crossed the required NR threshold, while the LTE serving-cell signal has degraded enough to justify moving the UE from LTE to NR. This is the first valid stage where LTE-to- NR HO can be triggered.
                      In Stage 4 , NR is already clearly strong, but the handover could already have been triggered earlier in Stage 3.


                      NEW QUESTION # 18
                      A customer complains about coverage reduction after modernization of 4G TDD 4x4 sites to Concurrent mMIMO B41/n41 with AEHC module 64T64R . Which of the following statements regarding RF design changes to increase the coverage is correct?

                      Answer: C

                      Explanation:
                      The correct answer is C .
                      In a Concurrent mMIMO B41/n41 AEHC 64T64R deployment, LTE and NR share the same Massive MIMO active antenna system. Public Nokia material identifies AEHC as an AirScale Massive MIMO
                      64T64R B41 radio product, and Nokia's AirScale Massive MIMO portfolio is designed for high-capacity 5G
                      /RAN deployments.
                      Unlike a passive antenna system where coverage is changed mainly by physical/electrical RET, Massive MIMO coverage is strongly influenced by beamforming profiles and beamforming weight parameters . In concurrent LTE/NR operation, the RF design must consider the shared active antenna behavior, not independent passive RET-style tilt control per technology.
                      Therefore, for concurrent 4G/5G mMIMO coverage adjustment, the correct statement is:
                      The tilt/coverage behavior for both 4G and 5G is controlled by mMIMOSecSectorBFProfName and beamforming weight profile parameters.


                      NEW QUESTION # 19
                      When selecting an LTE anchor layer for EN-DC , why is it important to check 3GPP band combinations ?

                      Answer: D

                      Explanation:
                      The correct answer is B .
                      In 5G NSA EN-DC , the UE connects to LTE as the Master Cell Group , or anchor, and NR as the Secondary Cell Group . Not every LTE band can be paired with every NR band. The supported LTE-NR combinations are defined by 3GPP band-combination rules and must also be supported by the UE chipset and device capability.
                      For example, an operator may have LTE Band 3, Band 7, or Band 20 and NR n78, but only certain LTE-NR combinations may be valid for EN-DC. If the selected LTE anchor band is not supported in combination with the NR band, the UE will not be able to establish EN-DC even if LTE and NR coverage both exist.
                      Option C is not correct because dual-uplink support depends on UE capability and specific band-combination support; it cannot be guaranteed for all UE models. Option A and D are unrelated to the main purpose of checking 3GPP band combinations.
                      So the correct reason is:
                      To ensure that LTE and NR bands are compatible and allowed as EN-DC pairs.


                      NEW QUESTION # 20
                      The slice type SST value for Extreme Broadband is typically:

                      Answer: D

                      Explanation:
                      The correct answer is B .
                      In 5G network slicing, SST means Slice/Service Type . It identifies the high-level service category of a network slice.
                      Typical standardized SST values are:
                      SST = 1 # eMBB, enhanced Mobile Broadband
                      SST = 2 # URLLC, Ultra-Reliable Low-Latency Communication
                      SST = 3 # MIoT/mMTC, Massive IoT or massive Machine Type Communication
                      SST = 4 # V2X-related slice type
                      "Extreme Broadband" is normally aligned with eMBB , because it refers to high data rate, high capacity, and broadband user experience.
                      Therefore, the SST value for Extreme Broadband is:
                      1.


                      NEW QUESTION # 21
                      In the context of radio capacity management , what is the significance of Scheduling Request periodicity ?

                      Answer: C

                      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 # 22
                      ......

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