Precision Onboard Navigation for LEO Satellite based on Precise Point Positioning

Masaya Murata, I. Kawano, Koichi Inoue
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引用次数: 8

Abstract

The PPP is a technique being actively researched and developed for estimating the precise position of a stationary point on the surface of the earth. Its particular features are that unlike the relative positioning method, the PPP does not require reference points and it provides the centimeter-level positioning accuracy in real-time using the precise orbit and clock information of the navigation satellites such as the GPS satellites. Lately, the application of the PPP technique to the onboard navigation of the low earth orbit (LEO) satellites is attracting attentions from aerospace researchers and engineers. Such a navigation technique is called the PPP in Space or the Space PPP. As for the existing approaches, the PPP in Space methods using precise LEO satellite dynamics [1] and kinematic PPP which does not use such dynamics [2] [3] were proposed and these results were impressive: the decimeter-level or even the centimeter-level satellite positioning accuracy was confirmed by the offline experiments using actual European LEO satellites dataset. Although these navigation methods are obviously state-of-the-art, this paper takes an another approach that focuses on improving the accuracy of satellite onboard navigation (NAV) using the PPP technique. The methodology presented in this paper is similar to the work [4] that used a reference orbit trajectory for the PPP in Space, that is, the errors of the reference trajectory were estimated using the PPP technique. However, the calculation of their reference trajectories requires the computational time and it can not be performed onboard a satellite. Therefore, we designed our method to work in realtime by using the onboard NAV as the reference trajectory. The performance of the proposed PPP NAV method was evaluated using the actual data of a Japanese earth observation satellite ALOS2 (Advanced Land Observing Satellite) [5].
基于精确点定位的LEO卫星星载精确导航
PPP是一种正在积极研究和发展的技术,用于估计地球表面上一个静止点的精确位置。与相对定位方法不同的是,PPP不需要参考点,利用GPS等导航卫星的精确轨道和时钟信息实时提供厘米级的定位精度。近年来,PPP技术在近地轨道卫星星载导航中的应用日益受到航天研究人员和工程技术人员的关注。这种导航技术被称为空间PPP或空间PPP。针对现有的定位方法,提出了利用精确LEO卫星动态[1]的空间PPP方法和不使用精确LEO卫星动态[2][3]的运动学PPP方法,结果令人印象深刻:利用欧洲实际LEO卫星数据集进行的离线实验证实了分米级甚至厘米级的卫星定位精度。虽然这些导航方法显然是最先进的,但本文采取了另一种方法,重点是利用PPP技术提高卫星机载导航(NAV)的精度。本文提出的方法类似于[4]使用参考轨道进行空间PPP的工作,即使用PPP技术估计参考轨道的误差。然而,它们的参考轨迹计算需要计算时间,并且无法在卫星上进行。因此,我们设计了以机载NAV作为参考轨迹的实时工作方法。利用日本先进陆地观测卫星(ALOS2)[5]的实测数据,对PPP导航方法的性能进行了评价。
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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