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首页> 外文期刊>Journal of guidance, control, and dynamics >Three-Degree-of-Freedom Estimation of Agile Space Objects Using Marginalized Particle Filters
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Three-Degree-of-Freedom Estimation of Agile Space Objects Using Marginalized Particle Filters

机译:使用边际粒子滤波器的敏捷空间物体的三自由度估计

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Several innovations are introduced for space object attitude estimation using light-curve measurements. A radiometric measurement noise model is developed to define the observation uncertainty in terms of optical, environmental, space object, and sensor parameters and is validated using experimental data. Additionally, a correlated process noise model is introduced to represent the angular acceleration dynamics. This model is used to account for the unknown inertia and body torques of agile space objects. This linear dynamics model enables the implementation of marginalized particle filters, affording computationally tractable three-degree-of-freedom Bayesian estimation. The synthesis of these novel approaches enables the estimation of attitude and angular velocity states of maneuvering space objects without a priori knowledge of initial attitude while maintaining computational tractability. Simulated results are presented for the full three-degree-of-freedom agile space object attitude estimation problem.
机译:引入了一些创新,用于使用光曲线测量的空间物体姿态估计。建立了辐射测量噪声模型,以定义光学,环境,空间物体和传感器参数方面的观测不确定性,并使用实验数据进行了验证。另外,引入了相关的过程噪声模型来表示角加速度动力学。该模型用于说明敏捷空间物体的未知惯性和车身扭矩。该线性动力学模型能够实现边缘化粒子滤波器,从而提供了易于计算的三自由度贝叶斯估计。这些新颖方法的综合实现了对机动空间物体的姿态和角速度状态的估计,而无需事先了解初始姿态,同时又保持了计算的可处理性。给出了完整的三自由度敏捷空间物体姿态估计问题的仿真结果。

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