扩展LoRa直接到卫星的限制:多普勒频移预补偿

IF 6.3 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Muhammad Asad Ullah;Richard Demo Souza;Gianni Pasolini;Jean Michel de Souza Sant’Ana;Marko Höyhtyä;Konstantin Mikhaylov;Hirley Alves;Enrico Paolini;Akram Al-Hourani
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引用次数: 0

摘要

早期的研究和实地试验广泛调查了远程(LoRa)直接与卫星(DtS)通信,证实了与低地球轨道(LEO)卫星集成的可行性。这些工作将多普勒效应确定为主要挑战之一。因此,需要一个健壮的解决方案来减轻这种现象的影响,以提高LEO场景中LoRa DtS通信的性能。本文通过开发一种预先补偿多普勒频移的解决方案来解决这一缺点。具体来说,我们提出了一种方法,允许终端设备在启动上行传输之前估计和预补偿多普勒频移。该框架要求卫星广播多普勒信标,确保与现有的LoRaWAN终端设备兼容,而不需要任何硬件修改。我们利用来自真实世界LoRa卫星的经验遥测数据来验证我们提出的方法。我们分析研究了由于多普勒频移在不同载波频率上造成的数据包丢失,特别是401.5 MHz, 868 MHz和2ghz。我们的分析还考虑了不同的卫星轨道高度,特别是200公里和518公里,以及31.25 kHz, 62.5 kHz和125 kHz的信道带宽。结果表明,该方案有效地预先补偿了多普勒频移,减少了数据包丢失,延长了通过卫星的有效可见窗口时间。我们研究了通信信道中的最大多普勒频移,并计算了不同轨道高度、最小仰角和载波频率下所需的多普勒信标带宽。本研究还调查了所提出的框架如何影响终端设备的电池寿命,显示与传统的LoRaWAN操作相比,边际减少2.5%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Extending the LoRa Direct-to-Satellite Limits: Doppler Shift Pre-Compensation
Earlier studies and field tests have extensively investigated Long Range (LoRa) direct-to-satellite (DtS) communications, confirming the feasibility of integration with Low Earth Orbit (LEO) satellites. These works identify the Doppler effect as one of the primary challenges. Therefore, there is a need for a robust solution to mitigate the impact of this phenomenon in order to improve the performance of LoRa DtS communications in a LEO scenario. This paper addresses this shortcoming by developing a solution to pre-compensate the Doppler shift. Specifically, we propose a method that allows end devices to estimate and pre-compensate the Doppler shift before initiating an uplink transmission. This framework, which requires satellites to broadcast Doppler Beacons, ensures compatibility with existing LoRaWAN end devices without requiring any hardware modifications. We leverage data from real-world LoRa satellites’ empirical telemetry to validate our proposed method. We analytically study packet losses due to Doppler shift across different carrier frequencies, specifically 401.5 MHz, 868 MHz, and 2 GHz. Our analysis also considers different satellite orbital heights, specifically 200 km and 518 km, as well as channel bandwidths of 31.25 kHz, 62.5 kHz, and 125 kHz. Our results demonstrate that the proposed solution effectively pre-compensates for the Doppler shift and mitigates the packet losses, extending the passing satellites’ effective visibility window duration. We examine the maximum Doppler shift in the communication channel and the calculate required Doppler Beacon bandwidth for different orbital altitudes, minimum elevation angles, and carrier frequencies. This study also investigates how the proposed framework affects the battery lifetime of the end device, showing a marginal decrease of 2.5% compared to traditional LoRaWAN operation.
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来源期刊
CiteScore
13.70
自引率
3.80%
发文量
94
审稿时长
10 weeks
期刊介绍: The IEEE Open Journal of the Communications Society (OJ-COMS) is an open access, all-electronic journal that publishes original high-quality manuscripts on advances in the state of the art of telecommunications systems and networks. The papers in IEEE OJ-COMS are included in Scopus. Submissions reporting new theoretical findings (including novel methods, concepts, and studies) and practical contributions (including experiments and development of prototypes) are welcome. Additionally, survey and tutorial articles are considered. The IEEE OJCOMS received its debut impact factor of 7.9 according to the Journal Citation Reports (JCR) 2023. The IEEE Open Journal of the Communications Society covers science, technology, applications and standards for information organization, collection and transfer using electronic, optical and wireless channels and networks. Some specific areas covered include: Systems and network architecture, control and management Protocols, software, and middleware Quality of service, reliability, and security Modulation, detection, coding, and signaling Switching and routing Mobile and portable communications Terminals and other end-user devices Networks for content distribution and distributed computing Communications-based distributed resources control.
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