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Using Bayesian Networks to evaluate the trustworthiness of ‘2 out of 3’ decision fusion mechanisms in multi-sensor applications

机译:使用贝叶斯网络评估多传感器应用中“三分之二”决策融合机制的可信度

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The use of smart-sensors to recognize automatically complex situations (anomalous behaviors, physical security threats, etc.) requires ‘intelligent’ methods to improve the trustworthiness of automatic decisions. Voting and consensus mechanisms can be employed whether supported by probabilistic formalisms to correlate event occurrence, to merge local events and to estimate the likelihood of overall decisions. This paper presents the results of a quantitative comparison of three different voting schemes based on Bayesian Networks. These models present a growing complexity and they are able to provide a trustworthiness estimation based on single nodes detection reliability in terms of false alarm probabilities.
机译:使用智能传感器自动识别复杂情况(异常行为,物理安全威胁等)需要“智能”方法来提高自动决策的可信度。无论是否有概率形式主义支持,都可以采用投票和共识机制来关联事件发生,合并本地事件以及估计总体决策的可能性。本文介绍了基于贝叶斯网络的三种不同投票方案的定量比较结果。这些模型的复杂性不断提高,并且能够基于单节点检测可靠性(基于虚警概率)提供可信度估计。

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