Satellite–Aircraft Handover in Ultra-Dense LEO Satellite Networks

IF 7.1 2区 计算机科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Vehicular Technology Pub Date : 2024-11-11 DOI:10.1109/TVT.2024.3495658
Yilei Wang;Ting Ma;Xiaohan Qin;Xin Zhang;Zitian Zhang;Haibo Zhou
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Abstract

With the rapid development of low earth-orbit (LEO) satellites, the ultra-dense LEO satellite network (UDLSN) has become a promising solution to provide Internet services for civil aviation due to its wide coverage, exceptional flexibility and high reliability. To guarantee the continuity and high-quality Internet services, satellite-aircraft handover is inevitable because of the high mobility of aircraft and satellites. However, the stringent passenger communication requirements and the considerable increase in the scale of candidate satellites pose huge challenges in satellite-aircraft handover in UDLSNs. In this paper, we investigate multiple civil aircraft handover issue including satellite handover, subchannel allocation, and power selection in the UDLSN and consider different levels of usersâ rate satisfaction, power overhead, and handover overhead as handover criteria for performance measure. The optimization problem is formulated to maximize the handover satisfaction of all civil aircraft. Particularly, the formulated handover problem is represented as a local cooperation game, where each aircraft determines the handover action and the power level by cooperating with other interference aircraft. We prove that the proposed game has at least one Nash Equilibrium (NE) solution in which no aircraft changes its handover strategy. The NE solution in the proposed game is further proven to locally or globally maximize the optimization objective and we then design the parallel handover strategy update (PHSU) algorithm to find the NE solution. Simulation results based on trajectories of real civil aircraft demonstrate that, the designed algorithm is robust, can effectively meet diverse user requirements, and reduce both handover frequency and delays.
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超密集低地轨道卫星网络中的卫星-飞机切换
随着近地轨道卫星的快速发展,超密集近地轨道卫星网络(UDLSN)以其覆盖范围广、灵活性好、可靠性高等特点,成为民航互联网服务的一种很有前景的解决方案。为了保证互联网服务的连续性和高质量,由于飞机和卫星的高机动性,星机切换是不可避免的。然而,严格的乘客通信要求和候选卫星规模的大幅增加,给udlns的星机切换带来了巨大的挑战。本文研究了UDLSN中的多个民用飞机切换问题,包括卫星切换、子信道分配和功率选择,并考虑了不同程度的用户满意度、功率开销和切换开销作为性能度量的切换标准。以所有民用航空器的交接满意度最大化为目标,制定了优化问题。特别地,将所制定的交接问题表示为局部合作博弈,每架飞机通过与其他干扰飞机的合作来确定交接动作和功率水平。我们证明了所提出的博弈至少有一个纳什均衡解,其中没有飞机改变其切换策略。进一步证明了所提对策中的网元解决方案能够局部或全局最大化优化目标,然后设计了并行切换策略更新(PHSU)算法来寻找网元解决方案。基于真实民机轨迹的仿真结果表明,所设计的算法鲁棒性好,能有效满足不同用户需求,降低切换频率和延迟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.00
自引率
8.80%
发文量
1245
审稿时长
6.3 months
期刊介绍: The scope of the Transactions is threefold (which was approved by the IEEE Periodicals Committee in 1967) and is published on the journal website as follows: Communications: The use of mobile radio on land, sea, and air, including cellular radio, two-way radio, and one-way radio, with applications to dispatch and control vehicles, mobile radiotelephone, radio paging, and status monitoring and reporting. Related areas include spectrum usage, component radio equipment such as cavities and antennas, compute control for radio systems, digital modulation and transmission techniques, mobile radio circuit design, radio propagation for vehicular communications, effects of ignition noise and radio frequency interference, and consideration of the vehicle as part of the radio operating environment. Transportation Systems: The use of electronic technology for the control of ground transportation systems including, but not limited to, traffic aid systems; traffic control systems; automatic vehicle identification, location, and monitoring systems; automated transport systems, with single and multiple vehicle control; and moving walkways or people-movers. Vehicular Electronics: The use of electronic or electrical components and systems for control, propulsion, or auxiliary functions, including but not limited to, electronic controls for engineer, drive train, convenience, safety, and other vehicle systems; sensors, actuators, and microprocessors for onboard use; electronic fuel control systems; vehicle electrical components and systems collision avoidance systems; electromagnetic compatibility in the vehicle environment; and electric vehicles and controls.
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