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首页> 外文期刊>IEEE Transactions on Aerospace and Electronic Systems >Reduced spatio-temporal complexity MMPP and image-based tracking filters for maneuvering targets
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Reduced spatio-temporal complexity MMPP and image-based tracking filters for maneuvering targets

机译:减少时空复杂性MMPP和基于图像的跟踪滤波器,用于操纵目标

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We present reduced-complexity nonlinear filtering algorithms for image-based tracking of maneuvering targets. In image-based target tracking, the mode of the target is observed as a Markov modulated Poisson process (MMPP) and the aim is to compute optimal estimates of the target's state. We present a reduced complexity algorithm in two steps. First, a gauge transformation is used to reexpress the filtering equations in a form that is computationally more efficient for time discretization than naive discretization of the filtering equations. Second, a spatial aggregation algorithm with guaranteed performance bounds is presented for the time-discretized filters. A numerical example illustrating the performance of the resulting reduced-complexity filtering algorithms for a switching turn-rate model is presented.
机译:我们提出了减速复杂性非线性滤波算法,用于了基于图像的机动目标的跟踪。在基于图像的目标跟踪中,观察目标的模式作为马尔可夫调制泊松过程(MMPP),目的是计算目标状态的最佳估计。我们呈现了两步的复杂性算法。首先,使用规范变换来重复以比滤波方程的天真离散化进行计算地,以计算更高效的时间离散化的形式重新申报滤波方程。其次,为时间离散滤波器呈现了具有保证性能界限的空间聚合算法。提出了一种数字示例,示出了用于切换转速模型的所得到的减速复杂度滤波算法的性能。

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