Low Earth orbit (LEO)-based non-terrestrial networks (NTN) are emerging as a key component of 6G systems, enabling seamless connectivity over wide geographical areas. However, in Earth-moving cell (EMC)-based NTN scenarios, rapid beam movement induces frequent cell boundary crossings, resulting in excessive handover operations and significant signaling overhead. This makes efficient mobility management a critical challenge. Recently, L1/L2-triggered mobility (LTM) and conditional LTM (C-LTM), specified in 3GPP Releases 18 and 19, respectively, have been proposed as advanced handover mechanisms to enhance mobility robustness. Despite their potential, their effectiveness in highly dynamic NTN environments has not yet been systematically evaluated. This paper presents a comprehensive system-level evaluation of 3GPP handover mechanisms in NTN, including baseline handover (BHO), conditional handover (CHO), LTM, and C-LTM. A dedicated simulator is developed to capture the unique characteristics of LEO satellite networks and realistic handover procedures under EMC conditions. The results show that schemes based on LTM and C-LTM significantly improve mobility robustness by reducing radio link failures and interruption time. However, these gains come at the cost of increased handover frequency and potentially increased signaling overhead associated with frequent mobility events and measurement reporting in EMC-based NTN environments. This reveals a fundamental tradeoff between mobility robustness and signaling efficiency. The findings provide quantitative insights into the performance of emerging 3GPP mobility solutions in NTN and offer practical guidelines for designing efficient handover strategies in highly dynamic 6G NTN environments.
Gyoungmin Been, Byung-Kwan Lim, Junsu Kim et al.· IEEE Access· 0 citations
In this paper, we propose a CSI-free distributed user scheduling scheme for intelligent reflecting surface (IRS)-aided multi-user systems. Building upon adaptive conditional sample mean (A-CSM), originally developed for blind beamforming in IRS-aided systems, we exploit the first-stage A-CSM output as a local scheduling metric without explicit channel state information (CSI). The obtained metric exhibits a non-negative and rightskewed distribution, which can be effectively approximated by a Gamma distribution. Based on this observation, the proposed CSI-free-D-Gamma scheme first maps the local metric into a normalized access variable using a moment-matched Gamma CDF. Then, unlike LUT- and Uniform-based baselines that terminate with equal-width slot-region mapping, the proposed Gamma scheme further adjusts the discrete slot-index regions in the normalized domain by considering both the Gammainduced rate contribution and the earliest-singleton collision behavior. Under the considered symmetric small-scale fading setting, numerical results show that the proposed CSI-free-D-Gamma scheme reduces the collision probability and improves the average achievable rate compared with LUT-based, fixed minmax uniform mapping, and Random Scheduling baselines.
Jaeheon Park, Junsu Kim, Su Min Kim· International Conference on...· 0 citations
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