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A new method and a case study in statistical modeling of bistatic radar cross section

机译:一种新方法和统计建模统计建模的案例研究

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We propose new tools that allow one to perform statistical modeling of radar cross section (RCS). In our approach, we model fluctuations of RCS as a realization of nonstationary random process with a hidden time-varying state that governs its local properties. We describe how one can employ a recently proposed Bayesian tracker to fit the adopted model to an observed sequence of data, and explain how to validate the fitted model's goodness of fit. We apply the proposed approach to data recorded with the PaRaDe FM passive radar system. The results support our hypothesis that long integration times that are typically employed in FM passive radars result in smoother (less spiky) behavior of target RCS than predicted by the classical Swerling I and III models.
机译:我们提出了新的工具,允许其中执行雷达横截面(RCS)的统计建模。在我们的方法中,我们模拟RCS的波动作为非间断随机过程的实现,隐藏时变状态控制其本地属性。我们描述了人们如何使用最近提出的贝叶斯追踪器将采用的模型拟合到观察到的数据序列,并解释了如何验证拟合模型的适合度。我们将建议的方法应用于与游行FM无源雷达系统记录的数据。结果支持我们的假设,即通常在FM无源雷达中使用的长集成时间导致目标RC的更顺畅(更小的尖峰),而不是经典抖动I和III模型所预测的。

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