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Method for joint estimation for states and parameters concerning non-linear systems with time-correlated measurement noise

机译:具有时间相关测量噪声的非线性系统的状态和参数的联合估计方法

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A dimensionality-reduction-augmented non-linear state-space representation has been proposed to reduce the optimisation space for maximum-likelihood estimation. Based on the above representation, an expectation-maximisation algorithm has been derived to realise joint estimation of states and parameters. During the expectation step, the system state was estimated via the use of a fifth-order cubature Kalman filter and Rauch-Tung-Striebel smoother based on the state-augmented method. During the maximisation step, unknown parameters within iterations were estimated using the Newton method. Subsequently, two joint-estimation methods - one containing all measurements and the other involving a sliding window - were developed to estimate the invariants and step parameters, respectively. An example concerning manoeuvring-target tracking has been discussed to demonstrate the performance of proposed algorithms.
机译:已经提出了一种维度还原增强的非线性状态空间表示,以减少最大似然估计的优化空间。基于上述表示,已经导出了期望最大化算法以实现各种和参数的联合估计。在期望步骤期间,通过使用基于状态增强方法的第五阶Cubature Kalman滤波器和Rauch-tung-Striebel更顺畅估计系统状态。在最大化步骤中,使用牛顿方法估计迭代中的未知参数。随后,开发了两个包含所有测量和其他涉及滑动窗口的联合估计方法 - 以分别估计不变性和步骤参数。已经讨论了关于机动目标跟踪的示例以展示所提出的算法的性能。

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  • 来源
    《Control Theory & Applications, IET》 |2019年第5期|721-731|共11页
  • 作者单位

    Air Force Engn Univ Aeronaut & Astronaut Coll Xian Shaanxi Peoples R China|Air Force Aviat Univ Aviat Combat & Serv Inst Changchun Jilin Peoples R China;

    Air Force Engn Univ Aeronaut & Astronaut Coll Xian Shaanxi Peoples R China;

    Air Force Engn Univ Air Traff Control & Nav Coll Xian Shaanxi Peoples R China;

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