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首页> 外文期刊>International Journal of Performability Engineering >Model-Based Analysis of 'k out of m' Correlation Techniques for Diverse Redundant Detectors
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Model-Based Analysis of 'k out of m' Correlation Techniques for Diverse Redundant Detectors

机译:基于模型的多样冗余检测器“ k出m”相关技术分析

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摘要

Sensors are widespread in applications ranging from environmental monitoring to distributed surveillance for physical security. Novel protocols and appropriate topologies enable large networks of cheap smart-sensors with the main objective of providing pervasiveness and resilience. In this paper we provide a model-based analysis of a 'k-out-of-m' ('KooM') voting approach which can be used to correlate data coming from heterogeneous event detecting devices. The approach is based on the assumption of diverse redundancy on sensor technologies. The Bayesian Network formalism is employed to perform the analysis. The results show that by choosing appropriate correlation logics an optimal trade-off can be achieved among probability of detection, false alarm rate, availability and robustness against spoofing attempts, depending on the specific application. Furthermore, it will be shown that majority voting on detector outputs allows for a high cost effectiveness in obtaining performance improvements.
机译:传感器在从环境监视到物理安全的分布式监视的广泛应用中。新颖的协议和适当的拓扑结构使廉价智能传感器的大型网络成为可能,其主要目的是提供普及性和弹性。在本文中,我们提供了基于模型的'k-out-of-m'('KooM')投票方法的分析,该方法可用于关联来自异构事件检测设备的数据。该方法基于传感器技术具有多种冗余的假设。贝叶斯网络形式主义被用来进行分析。结果表明,根据特定的应用,通过选择适当的相关逻辑,可以在检测概率,误报率,可用性和针对欺骗尝试的鲁棒性之间实现最佳平衡。此外,将显示出对检测器输出的多数投票允许获得性能改进的高成本效率。

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