CubeSat attitude determination with decomposed Kalman filters

被引:0
作者
Reizinger Patrik
Vajda Ferenc
机构
[1] University of Tübingen,Institute For Theoretical Physics
[2] Ericsson Hungary,undefined
[3] C3S LLC,undefined
来源
Journal of the Brazilian Society of Mechanical Sciences and Engineering | 2023年 / 45卷
关键词
Kalman filtering; Virtual sensor; Orientation estimation; Spacecraft;
D O I
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摘要
CubeSats are the cost-effective entry to space research and applications. As mission requirements increase to carry out more complex tasks, the constraints on the satellite challenge how attitude estimation and control systems are designed. Limited energy, sensors, and computational capacity require compromises. In this paper, we propose a Kalman filter architecture to reduce the computational cost of attitude estimation, leveraging the conditional independence structure of its physical model. Our method decomposes attitude dynamics and kinematics, leading to a linear attitude quaternion and a nonlinear angular velocity filter. As accommodating all vector measurements would require a nonlinear filter, we propose the virtual sensor paradigm that transforms the nonlinear observation model into a linear one, without relying on approximations. Our numerical experiments showcase superior error dynamics and robustness to epistemic uncertainty compared to a nonlinear quaternionic filter, and we also investigate performance against star tracker measurement frequency and sensitivity to the angle between Sun and Earth magnetic field measurements.
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共 43 条
[1]  
Rashid AT(2015)Multi-robot localization and orientation estimation using robotic cluster matching algorithm Robot Auton Syst 63 108-121
[2]  
Frasca M(2013)An adaptive sigma point filter for nonlinear filtering problems Int J Electr Electron Comput Eng 2 13-19
[3]  
Ali AA(2011)Inexpensive cubesat attitude estimation using quaternions and unscented Kalman filtering Autom Control Aerosp 4 1-12
[4]  
Rizzo A(2003)Unscented filtering for spacecraft attitude estimation J Guid Control Dyn 26 536-542
[5]  
Fortuna L(2010)Applications of Kalman filtering in aerospace 1960 to the present [historical perspectives] IEEE Control Syst Mag 30 69-78
[6]  
Das M(1965)A least squares estimate of satellite attitude SIREV 8 409-204
[7]  
Sadhu S(1997)ESOQ: a closed-form solution to the Wahba problem J Astronaut Sci 45 195-888
[8]  
Ghoshal TK(2000)Second estimator of the optimal quaternion J Guid Control Dyn 23 885-380
[9]  
Vinther K(2000)Quaternion attitude estimation using vector observations J Astronaut Sci 48 359-282
[10]  
Jensen KF(1960)A new approach to linear filtering and prediction problems J Basic Eng 82 35-19