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Maximum mixture correntropy based outlier-robust nonlinear filter and smoother

机译:基于最大混合物的基于矫正器 - 鲁棒的非线性过滤器和更顺畅

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In this paper, we are dedicated to studying the robust filtering and smoothing problem for a nonlinear non-Gaussian system. Considering the advantage of mixture correntropy with two kernel bandwidths in dealing with non-Gaussian noise, we propose the novel robust recursive filter and smoother based on the cost functions induced by the maximum mixture correntropy criterion, where the nonlinear dynamic model function and measurement model function are linearized by using the statistical linear regression (SLR) method. In the proposed robust recursive filter and smoother, we apply a third-order spherical cu-bature rule to obtain the prior estimation of the state and covariance matrix, and approximate the multidimensional Gaussian integrals encountered in the SLR method. Furthermore, two additional weights are introduced into the proposed robust recursive filter and smoother to modify the filtering and smoothing gains, respectively. The simulation results of manoeuvring target tracking under different non-Gaussian noise scenarios illustrate the effectiveness of the proposed robust recursive filter and smoother.
机译:在本文中,我们致力于研究非线性非高斯系统的鲁棒滤波和平滑问题。考虑到混合控制与两个内核带宽在处理非高斯噪声的情况下,我们提出了基于最大混合控制性标准引起的成本函数的新颖稳健递力过滤器和更顺畅,其中非线性动态模型功能和测量模型功能通过使用统计线性回归(SLR)方法是线性化的。在提出的稳健递送过滤器和更漂亮中,我们应用三阶球形Cu - 成熟规则以获得状态和协方差矩阵的先前估计,并近似于单反法遇到的多维高斯积分。此外,将两种额外的重量引入到所提出的稳健折馈过滤器中,并更加光滑以分别修改滤波和平滑的增益。不同非高斯噪声情景下机动目标跟踪的仿真结果表明了所提出的稳健递送过滤器和更顺畅的有效性。

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