用于直接到卫星物联网通信的LR-FHSS收发器:设计,实现和验证

IF 5.3 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Sooyeob Jung;Seongah Jeong;Jinkyu Kang;Gyeongrae Im;Sangjae Lee;Mi-Kyung Oh;Joon Gyu Ryu;Joonhyuk Kang
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引用次数: 0

摘要

提出了一种用于直对卫星物联网(DtS-IoT)通信系统的长程跳频扩频收发器设计。DtS-IoT系统作为一种很有前途的非地面网络(NTN)解决方案,最近引起了人们的关注,该解决方案可为全球覆盖的物联网设备提供高流量和容延迟数据传输服务,例如智能电网中的广域态势感知(WASA)和汽车应用中的汽车共享管理。特别是,本研究为符合远程广域网(LoRaWAN)的整体DtS-IoT系统架构和设计细节提供了指导方针。此外,我们还详细介绍了各种DtS-IoT用例。针对低地球轨道(LEO)卫星,为了提高系统效率,我们开发了LR-FHSS收发器,这是除商业产品外,利用LR-FHSS构建实用卫星通信系统的首次尝试。此外,我们应用了一种鲁棒的同步方案来对抗多普勒效应和由LEO卫星信道环境引起的同信道干扰(CCI),包括用于同时接收多个跳频信号的信号检测和用于头部和有效载荷接收的增强软输出viterbi算法(SOVA)。最后,我们提出了使用专用集成电路(ASIC)芯片组和现场可编程门阵列(FPGA)的概念验证实现和测试平台,以验证DtS-IoT通信系统中所提出的LR-FHSS收发器设计的性能。实验室测试结果表明,采用鲁棒同步技术的基于lr - fhs的框架可以为未来卫星通信网络的实现提供广泛覆盖、无缝连接和高吞吐量的通信链路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
LR-FHSS Transceiver for Direct-to-Satellite IoT Communications: Design, Implementation, and Verification
This paper proposes a long range-frequency hopping spread spectrum (LR-FHSS) transceiver design for the Direct-to-Satellite Internet of Things (DtS-IoT) communication system. The DtS-IoT system has recently attracted attention as a promising non-terrestrial network (NTN) solution to provide high-traffic and delay-tolerant data transfer services, such as wide-area situational awareness (WASA) in smart grids and car share management in automotive applications, to IoT devices in global coverage. In particular, this study provides guidelines for the overall DtS-IoT system architecture and design details that conform to the Long Range Wide-Area Network (LoRaWAN). Furthermore, we also detail various DtS-IoT use cases. Considering low-Earth orbit (LEO) satellites, we develop the LR-FHSS transceiver to improve system efficiency, which is a leading attempt to build practical satellite communication systems using LR-FHSS, excluding commercial products. Moreover, we apply a robust synchronization scheme against the Doppler effect and co-channel interference (CCI) caused by LEO satellite channel environments, including signal detection for the simultaneous reception of numerous frequency hopping signals and an enhanced soft-output-Viterbi-algorithm (SOVA) for the header and payload receptions. Lastly, we present proof-of-concept implementation and testbeds using an application-specific integrated circuit (ASIC) chipset and a field-programmable gate array (FPGA) that verify the performance of the proposed LR-FHSS transceiver design of DtS-IoT communication systems. The laboratory test results reveal that the proposed LR-FHSS-based framework with the robust synchronization technique can provide wide coverage, seamless connectivity, and high-throughput communication links for the realization of future satellite communication networks.
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来源期刊
CiteScore
9.60
自引率
0.00%
发文量
25
审稿时长
10 weeks
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