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Probability Based Optimal Algorithms for Multi-sensor Multi-target Detection

机译:基于概率的多传感器多目标检测最优算法

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The algorithm presented in this paper is designed to be used in automated multi-sensor surveillance systems which require observation of targets in a bounded area to optimize the performance of the system. There have been many approaches which deal with multi-sensor tracking and observation, but there haven''t been many which deal purely with targets detections i.e. each target needs to only be detected once. The metric used to gauge the performance of the system is percentage of targets detected among those that enter the area. Targets enter the area through source points on the side of the area according to Poisson distribution, the rate of entry is constant for all sources. The algorithm presented here uses target arrival information, sensor positions to generate an optimal motion strategy for the multi-sensor system every T time-steps i.e. every T time-steps, the probability of finding undetected targets is estimated, the optimal sensor paths for the next T time-steps are calculated. The algorithm performs robustly and optimally detecting around 80% of the targets that enter the area
机译:本文呈现的算法设计用于自动多传感器监控系统,需要观察有界区域中的目标以优化系统的性能。已经有许多方法处理多传感器跟踪和观察,但是没有许多人纯粹与目标检测到的许多方法。每个目标只需要检测一次。用于衡量系统性能的指标是进入该区域的目标中检测到的目标的百分比。目标根据泊松分布,通过源点进入区域的源点,对所有来源的条目率是恒定的。这里呈现的算法使用目标到达信息,传感器位置以为多传感器系统产生最佳运动策略,每个T时间步长,即每个T时间步长,估计未检测到的目标的概率,最佳传感器路径下一个T时间步骤计算。该算法稳健地执行了输入该区域的大约80%的目标

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