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Sensor Compromise Detection in Multiple-Target Tracking Systems

机译:多目标跟踪系统中的传感器损坏检测

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摘要

Tracking multiple targets using a single estimator is a problem that is commonly approached within a trusted framework. There are many weaknesses that an adversary can exploit if it gains control over the sensors. Because the number of targets that the estimator has to track is not known with anticipation, an adversary could cause a loss of information or a degradation in the tracking precision. Other concerns include the introduction of false targets, which would result in a waste of computational and material resources, depending on the application. In this work, we study the problem of detecting compromised or faulty sensors in a multiple-target tracker, starting with the single-sensor case and then considering the multiple-sensor scenario. We propose an algorithm to detect a variety of attacks in the multiple-sensor case, via the application of finite set statistics (FISST), one-class classifiers and hypothesis testing using nonparametric techniques.
机译:使用单个估计器跟踪多个目标是一个在受信任框架内通常解决的问题。如果对手获得了对传感器的控制权,则可以利用许多弱点。因为估计器必须跟踪的目标数量是未知的,所以对手可能会导致信息丢失或跟踪精度降低。其他问题包括引入错误的目标,这将导致浪费计算资源和物质资源,具体取决于应用程序。在这项工作中,我们研究了在多目标跟踪器中检测受损或故障传感器的问题,从单传感器情况开始,然后考虑多传感器情况。我们提出了一种通过使用有限集统计量(FISST),一类分类器和使用非参数技术进行的假设检验来检测多传感器情况下各种攻击的算法。

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