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Prediction of Channel Quality after Handover for Mobility Management in 5G.

, , and . 5GU, page 35-39. ICST, (2014)

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Path selection enabling user mobility and efficient distribution of data for computation at the edge of mobile network., , and . Comput. Networks, (2016)Reducing Energy Consumed by Repositioning of Flying Base Stations Serving Mobile Users., , and . WCNC, page 1-7. IEEE, (2020)Optimizing Transmission and Propulsion Powers for Flying Base Stations., and . WCNC, page 1-8. IEEE, (2020)Vehicular Network-Aware Route Selection Considering Communication Requirements of Users for ITS., , and . IEEE Syst. J., 12 (2): 1239-1250 (2018)Combination of visible light and radio frequency bands for device-to-device communication., , , and . PIMRC, page 1-7. IEEE, (2017)A Seamless Integration of Computationally-Enhanced Base Stations into Mobile Networks towards 5G., , , , and . VTC Spring, page 1-5. IEEE, (2015)Cloud-aware power control for cloud-enabled small cells., and . GLOBECOM Workshops, page 1038-1043. IEEE, (2014)Efficient Exploitation of Radio Frequency and Visible Light Communication Bands for D2D in Mobile Networks., , , , and . IEEE Access, (2019)Distance-Based Neighborhood Scanning for Handover Purposes in Network with Small Cells., and . IEEE Trans. Vehicular Technology, 65 (2): 883-895 (2016)Soft Frequency Reuse With Allocation of Resource Plans Based on Machine Learning in the Networks With Flying Base Stations., and . IEEE Access, (2021)