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Identifying Inhabitants of an Intelligent Environment Using a Graph- Based Data Mining System

机译:使用基于图的数据挖掘系统识别智能环境中的居民

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摘要

The goal of the MavHome smart home project is to build an intelligent home environment that is aware of its inhabitants and their activities. Such a home is designed to provide maximum comfort to inhabitants at minimum cost. This can be done by learning the activities of the inhabitants and to automate those activities. For this it is necessary to identify among multiple inhabitants who is currently present in the home. Subdue is a graph-based data mining algorithm that discovers patterns in structural data. By representing the activity patterns for each inhabitant as graphs, Subdue can be used for inhabitant identification. We introduce a multiple-class learning version of Subdue and show some preliminary results on synthetic smart home activity data for multiple inhabitants.
机译:MavHome智能家居项目的目标是建立一个了解其居民及其活动的智能家居环境。这样的房屋旨在以最小的成本为居民提供最大的舒适度。这可以通过学习居民的活动并使这些活动自动化来完成。为此,有必要在当前居住在多个居民中的居民中进行识别。 Subdue是一种基于图的数据挖掘算法,可发现结构数据中的模式。通过将每个居民的活动方式表示为图表,Subdue可用于居民识别。我们介绍了Subdue的多类学习版本,并显示了针对多个居民的合成智能家庭活动数据的一些初步结果。

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