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Optimization of point target tracking filters

机译:点目标跟踪过滤器的优化

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摘要

We review a powerful temporal-based algorithm, a triple temporal filter (TTF) with six input parameters, for detecting and tracking point targets in consecutive frame data acquired with staring infrared (IR) cameras. Using an extensive data set of locally acquired real-world data, we used an iterative optimization technique, the Simplex algorithm, to find an optimum set of input parameters for a given data set. Analysis of correlations among the optimum filter parameters based on a representative subset of our database led to two improved versions of the filter: one dedicated to noise-dominated scenes, the other to cloud clutter-dominated scenes. Additional correlations of filter parameters with measures of clutter severity and target velocity as well as simulations of filter responses to idealized targets reveal which features of the data determine the best choice of filter parameters. The performance characteristics of the filter is detailed by a few example scenes and metric plots of signal to clutter gains and signal to noise gains over the total database
机译:我们回顾了一种强大的基于时间的算法,即具有六个输入参数的三重时间滤波器(TTF),用于检测和跟踪用凝视红外(IR)摄像机获取的连续帧数据中的点目标。通过使用广泛的本地获取的真实世界数据集,我们使用了一种迭代优化技术,即Simplex算法,以找到给定数据集的最佳输入参数集。根据我们数据库的代表性子集对最佳滤波器参数之间的相关性进行分析,可以得到两种改进的滤波器版本:一种专门用于噪声占主导的场景,另一种专门用于云杂波占主导的场景。滤波器参数与杂波严重程度和目标速度的度量值之间的其他相关性,以及滤波器对理想目标的响应的仿真揭示了数据的哪些特征决定了滤波器参数的最佳选择。滤波器的性能特征由整个数据库中信号到杂波增益和信号到噪声增益的几个示例场景和度量图详细说明

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