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A sensory grammar for inferring behaviors in sensor networks

机译:用于推断传感器网络中行为的感官语法

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The ability of a sensor network to parse out observable activities into a set of distinguishable actions is a powerful feature that can potentially enable many applications of sensor networks to everyday life situations. In this paper we introduce a framework that uses a hierarchy of probabilistic context free grammars (PCFGs) to perform such parsing. The power of the framework comes from the hierarchical organization of grammars that allows the use of simple local sensor measurements for reasoning about more macroscopic behaviors. Our presentation describes how to use a set of phonemes to construct grammars and how to achieve distributed operation using a messaging model. The proposed framework is flexible. It can be mapped to a network hierarchy or can be applied sequentially and across the network to infer behaviors as they unfold in space and time. We demonstrate this functionality by inferring simple motion patterns using a sequence of simple direction vectors obtained from our camera sensor network testbed.
机译:传感器网络将可观察到的活动解析为一组可区分的动作的能力是一项强大的功能,可以潜在地使传感器网络在日常生活中得到许多应用。在本文中,我们介绍了一个框架,该框架使用概率上下文无关文法(PCFG)的层次结构执行此类解析。该框架的强大功能来自语法的分层组织,该语法允许使用简单的本地传感器测量值来推理更多的宏观行为。我们的演示文稿描述了如何使用一组音素来构建语法以及如何使用消息传递模型实现分布式操作。提议的框架是灵活的。可以将其映射到网络层次结构,也可以在整个网络中顺序应用这些行为,以推断行为在空间和时间上展现的行为。我们通过使用从我们的相机传感器网络测试平台获得的一系列简单方向矢量来推断简单运动模式来演示此功能。

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