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Navigation Augmentation based on LEO Communication Satellite Constellations

机译:基于Leo通信卫星星座的导航增强

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The main objective of this work is to investigation the feasibility and performances of LEO communication satellite constellations as potential navigation augmentation platforms. The further examination of the existing and upcoming LEO communication satellites constellations has been conducted, such as Iridium, Globalstar, Teledesic, One Web, Boeing, SpaceX, Samsung, etc. The comprehensive performances of LEOs for navigation augmentation are evaluated and analyzed in terms of constellation characteristics, footprint, coverage, signal strength, dilution of precision (DOP, including GDOP, PDOP, VDOP, HDOP), number of in-view satellites, with comparation to these of the current global positioning system (GPS), Galileo and Beidou system. The results showed that LEOs present superior performances compared with GNSS systems, and demonstrate promises as navigation augmentation platform for challenging environments. Moreover, the real-time signal-aided navigation method are explored, from user geometry and signal ranging errors to position errors. Then, we proposed a navigation system based on signal of opportunity from LEOs platform. The proposed system relay on a terrestrial benchmark network, consisting of several monitoring stations with time synchronization, to acquire the downlink communication signal from LEOs platforms and then estimates the time difference of arrival (TDOA) between stations with correlation-based blind detection algorithm. The TDOA estimations and geographical position information are utilized to develop the time-delay-based spatio-temporal distribution model, which the user can settle its own position by matching the model with its estimated TDOA values. The proposed navigation system can operate standalone and facilitates the integration of communication and navigation system.
机译:这项工作的主要目标是调查Leo通信卫星星座的可行性和性能作为潜在的导航增强平台。已经进行了对现有和即将到来的Leo通信卫星星座的进一步检查,例如铱星,全球化的乐团,遥测,一个网站,波音,Spacex,三星等。在星座特征,足迹,覆盖,信号强度,精度稀释(DOP,包括GDOP,PDOP,VDOP,HDOP),视图卫星的数量,与当前全球定位系统(GPS),伽利略和北斗的比较系统。结果表明,与GNSS系统相比,Leos呈现出优异的性能,并证明了作为挑战环境的导航增强平台的承诺。此外,探索实时信号辅助导航方法,从用户几何和信号测距错误到定位错误。然后,我们提出了一种基于Leos平台的机会信号的导航系统。在地面基准网络上提出的系统中继,由具有时间同步的若干监测站组成,以获取来自Leos平台的下行链路通信信号,然后通过基于相关的盲检测算法估计站的到达(TDOA)的时间差。利用TDOA估计和地理位置信息来开发基于时间延迟的时空时间分布模型,用户可以通过将模型与其估计的TDOA值匹配来解决其自己的位置。所提出的导航系统可以独立运行并促进通信和导航系统的集成。

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