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HIERARCHICALLY ORGANIZED BAYESIAN NETWORKS FOR DISTRIBUTED SENSOR NETWORKS

机译:分布式传感器网络的分层组织贝叶斯网络

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摘要

As sensor hardware becomes more sophisticated, smaller in size and increasingly affordable, use of large scale sensor networks is bound to become a reality in several application domains, such as vehicle condition monitoring, environmental sensing and security assessment. The ability to incorporate communication and decision capabilities in individual or groups of sensors, opens new opportunities for distributed sensor networks to monitor complex engineering systems. In such large scale sen-sor networks, the ability to integrate observations or inferences made by distributed sensors into a single hypothesis about the state of the system is critical. This paper addresses the sensor integration issue in hierar- chically organized sensor networks. We propose a multi-agent architecture for distributed sensor networks. We present a new formalism to represent causal relations and prior beliefs of hi-erarchies of sensors, called Hierarchically Organized Bayesian Networks (HOBN), which is a semantic extension of Multiply Sectioned Bayesian Networks (MSBN). This formalism allows a sensor to reason about the integrity of a sensed signal or the integrity of neighboring sensors. Furthermore, we can also evaluate the consistency of local observations with respect to the knowledge of the system gathered up to that point.
机译:随着传感器硬件变得越来越复杂,尺寸更小,价格越来越可承受,大规模传感器网络的使用必将在多个应用领域中成为现实,例如车辆状态监测,环境传感和安全评估。将通信和决策功能整合到单个或多个传感器中的能力,为分布式传感器网络监视复杂的工程系统带来了新的机遇。在如此大规模的传感器网络中,将分布式传感器的观察或推论整合到有关系统状态的单个假设中的能力至关重要。本文解决了按层次组织的传感器网络中的传感器集成问题。我们提出了一种用于分布式传感器网络的多代理架构。我们提出了一种新的形式主义来表示传感器层次结构的因果关系和先验信念,称为层次有组织的贝叶斯网络(HOBN),这是乘法分段贝叶斯网络(MSBN)的语义扩展。这种形式主义使传感器能够推断出感测信号的完整性或相邻传感器的完整性。此外,我们还可以针对收集到的系统知识评估本地观测的一致性。

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