多分段贝叶斯网络的进展:传感器网络从业者的视角

Yang Xiang, K. Zhang
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引用次数: 0

摘要

多分段贝叶斯网络为协作多智能体系统中不确定域的推理提供了一个概率框架。近年来在该框架下的建模、编译和推理等方面取得了一些进展。本文通过一个案例研究将这些进展联系在一起,并从智能传感器网络从业者的角度介绍它们。我们演示了如何将该框架应用于多传感器融合,以及如何将独立供应商开发的智能传感器代理集成到相干传感器融合系统中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advance in Multiply Sectioned Bayesian Networks: Sensor Network Practitioners' Perspective
Multiply sectioned Bayesian networks provide a probabilistic framework for reasoning about uncertain domains in cooperative multiagent systems. Several advances have been made in recent years on modeling, compilation and inference under the framework. This paper links these advances together through a case study and presents them from the perspective of practitioners in intelligent sensor networks. We demonstrate how the framework can be applied to multisensor fusion and how intelligent sensor agents developed by independent vendors can be integrated into a coherent sensor fusion system.
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