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Knowledge Discovery in Entity Based Smart Environment Resident Data Using Temporal Relation Based Data Mining

机译:基于时间关系的数据挖掘的实体基于智能环境驻留数据的知识发现

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Time is an important aspect of all real world phenomena. In this paper, we present a temporal relations-based framework for discovering interesting patterns in smart environment datasets, and test this framework in the context of the CASAS smart environments project. Our use of temporal relations in the context of smart environment tasks is described and our methodology for mining such relations from raw sensor data is introduced. We demonstrate how the results are enhanced by identifying the number of individuals in an environment, and apply the resulting technologies to look for interesting patterns which play a vital role to predict activities and identify anomalies in a physical smart environment.
机译:时间是所有现实世界现象的一个重要方面。在本文中,我们介绍了一种基于时间关系的框架,用于在智能环境数据集中发现有趣的模式,并在Casas Smart环境项目的上下文中测试此框架。我们描述了在智能环境任务的背景下使用时间关系,并介绍了我们从原始传感器数据挖掘这种关系的方法。我们通过识别环境中的个人数量来展示如何增强结果,并应用所产生的技术来寻找有趣的模式,这些模式起着重要作用,以预测物理智能环境中的活动和识别异常。

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