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Signal conditioning for the Kalman filter: application to satellite attitude estimation with magnetometer and sun sensors

机译:卡尔曼滤波器的信号调理:通过磁力计和太阳传感器应用于卫星姿态估计

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摘要

Most satellites use an on-board attitude estimation system, based on available sensors. In the case of low-cost satellites, which are of increasing interest, it is usual to use magnetometers and Sun sensors. A Kalman filter is commonly recommended for the estimation, to simultaneously exploit the information from sensors and from a mathematical model of the satellite motion. It would be also convenient to adhere to a quaternion representation. This article focuses on some problems linked to this context. The state of the system should be represented in observable form. Singularities due to alignment of measured vectors cause estimation problems. Accommodation of the Kalman filter originates convergence difficulties. The article includes a new proposal that solves these problems, not needing changes in the Kalman filter algorithm. In addition, the article includes assessment of different errors, initialization values for the Kalman filter; and considers the influence of the magnetic dipole moment perturbation, showing how to handle it as part of the Kalman filter framework.
机译:大多数卫星基于可用的传感器使用机载姿态估计系统。对于越来越受欢迎的低成本卫星,通常使用磁力计和太阳传感器。通常建议使用卡尔曼滤波器进行估算,以同时利用来自传感器和卫星运动数学模型的信息。坚持四元数表示也很方便。本文重点介绍与此上下文相关的一些问题。系统状态应以可观察的形式表示。由于测量矢量对齐导致的奇异性导致估计问题。卡尔曼滤波器的调节产生收敛困难。本文包括解决这些问题的新建议,无需更改卡尔曼滤波器算法。此外,本文还包括对不同错误的评估,卡尔曼滤波器的初始化值;以及并考虑了磁偶极矩扰动的影响,展示了如何将其作为卡尔曼滤波器框架的一部分进行处理。

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