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Aggregate surveillance: A cardinality tracking approach

机译:汇总监视:基数跟踪方法

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This paper introduces cardinality tracking, a special case of the more general multi-target tracking problem for which measurements do not provide any target state information. That is, each scan only provides information as to how many targets are present. We address the problem with a modified form of the multiple-hypothesis tracking formalism using equivalence classes. Structural results exist which enable optimal track extraction to be achieved. We introduce as well some variations, approximate approaches that introduce further hypothesis aggregation. We show that we are able to improve significantly over a straightforward MHT approach to the problem. Similar results can be obtained by considering the problem as one of Kalman filtering over the aggregation of targets.
机译:本文介绍了基数跟踪,这是更为普遍的多目标跟踪问题的一种特例,对于该问题,测量结果无法提供任何目标状态信息。也就是说,每次扫描仅提供有关存在多少个目标的信息。我们使用等价类,通过修改形式的多假设跟踪形式主义解决了这个问题。存在能够实现最佳轨道提​​取的结构结果。我们还介绍了一些变体,近似方法,这些方法引入了进一步的假设汇总。我们表明,通过解决问题的直接MHT方法,我们能够显着改善。通过将问题视为对目标聚集的卡尔曼滤波之一,可以得到类似的结果。

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