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Keywords = feeder link handover

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33 pages, 3149 KB  
Article
Space-Based Control Node Placement for Joint Handover and Migration Delay Optimization in LEO Networks
by Yang Liu, Wen Liu, Wenliang Lin, Heng Kang and Zhongliang Deng
Electronics 2026, 15(16), 3587; https://doi.org/10.3390/electronics15163587 - 12 Aug 2026
Viewed by 163
Abstract
Low Earth Orbit (LEO) communication networks are an important component of non-terrestrial networks (NTNs) in sixth-generation (6G) communication systems. LEO satellites are characterized by low propagation delay and highly time-varying topology. Space-based mobility management can effectively reduce transmission delay; however, rapid network variation [...] Read more.
Low Earth Orbit (LEO) communication networks are an important component of non-terrestrial networks (NTNs) in sixth-generation (6G) communication systems. LEO satellites are characterized by low propagation delay and highly time-varying topology. Space-based mobility management can effectively reduce transmission delay; however, rapid network variation makes space-based control node deployment and reconfiguration difficult to model and solve. Focusing on dual-layer LEO Walker constellations, this paper investigates the joint optimization of control node deployment and dynamic reconfiguration, and formulates a 0–1 mixed-integer linear programming model with multiple practical constraints, aiming to minimize the total handover and migration delay. The model incorporates practical constraints such as the CN resource budget, unique management of access layer satellites, inter-layer reachability, feeder link connectivity, non-empty control node (CN) management, and onboard resource capacity. To support online deployment, we propose a rolling-horizon migration-aware dynamic greedy control node placement algorithm (RH-MA-DGCNP), which updates the CN placement and the affiliation between access-layer satellites and CNs at each reconfiguration epoch while jointly considering the handover delay and the migration delay caused by transferring control-affiliation states from previous serving CNs to new serving CNs. A comparison with exact current-epoch MILP solutions obtained by CPLEX on validation instances shows that RH-MA-DGCNP achieves small optimality gaps with shorter computation time. Simulation results show that RH-MA-DGCNP achieves the lowest mean handover delay among all benchmark schemes and the lowest cumulative total delay cost among the quasi-dynamic and dynamic benchmark schemes. The CDF of handover delay further indicates that RH-MA-DGCNP has a higher proportion of low-delay handover events and effectively suppresses extremely high-delay handover cases. Sensitivity analyses under different elevation angle thresholds and ground station deployments further show that RH-MA-DGCNP maintains its performance advantage over the benchmark schemes under different network settings. Full article
(This article belongs to the Section Networks)
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18 pages, 4056 KB  
Article
A Novel Feeder Link Handover Strategy for Backhaul in LEO Satellite Networks
by Yuke Zhou, Jiang Liu, Ran Zhang, Man Ouyang and Tao Huang
Sensors 2023, 23(12), 5448; https://doi.org/10.3390/s23125448 - 8 Jun 2023
Cited by 15 | Viewed by 5013
Abstract
Thanks to their wide coverage and relatively low latency compared to geosynchronous satellites, Low Earth Orbit (LEO) satellite networks have been regarded as one of the most promising solutions to provide global broadband backhaul for mobile users and IoT devices. In LEO satellite [...] Read more.
Thanks to their wide coverage and relatively low latency compared to geosynchronous satellites, Low Earth Orbit (LEO) satellite networks have been regarded as one of the most promising solutions to provide global broadband backhaul for mobile users and IoT devices. In LEO satellite networks, the frequent feeder link handover invokes unacceptable communication interruptions and affects the backhaul quality. To overcome this challenge, we propose a maximum backhaul capacity handover strategy for feeder links in LEO satellite networks. To improve the backhaul capacity, we design an available backhaul capacity ratio to jointly consider feeder link quality and the inter-satellite network in handover decisions. In addition, we introduce a service time factor and handover control factor to reduce the handover frequency. Then, we propose the handover utility function based on the designed handover factors and propose a greedy-based handover strategy. Simulation results show that the proposed strategy outperforms conventional handover strategies in backhaul capacity with low handover frequency. Full article
(This article belongs to the Special Issue Satellite Based IoT Networks for Emerging Applications)
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