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An Extended Kalman Filter-Based Attitude Tracking Algorithm for Star Sensors

机译:基于扩展的基于卡尔曼滤波器的姿态跟踪算法,用于明星传感器

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摘要

Efficiency and reliability are key issues when a star sensor operates in tracking mode. In the case of high attitude dynamics, the performance of existing attitude tracking algorithms degenerates rapidly. In this paper an extended Kalman filtering-based attitude tracking algorithm is presented. The star sensor is modeled as a nonlinear stochastic system with the state estimate providing the three degree-of-freedom attitude quaternion and angular velocity. The star positions in the star image are predicted and measured to estimate the optimal attitude. Furthermore, all the cataloged stars observed in the sensor field-of-view according the predicted image motion are accessed using a catalog partition table to speed up the tracking, called star mapping. Software simulation and night-sky experiment are performed to validate the efficiency and reliability of the proposed method.
机译:当星形传感器以跟踪模式运行时,效率和可靠性是关键问题。在高姿态动态的情况下,现有态度跟踪算法的性能迅速退化。本文提出了一种扩展的基于卡尔曼滤波的姿态跟踪算法。星形传感器被建模为非线性随机系统,具有态度估计,提供三维自由度姿态四季度和角速度。预测和测量星形图像中的星位置以估计最佳态度。此外,使用目录分区表访问传感器视野中观察到的所有编目恒星,以加速跟踪,称为星形映射。进行软件仿真和夜空实验,以验证所提出的方法的效率和可靠性。

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