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Performance Evaluation of an Ambient Intelligence Testbed for Improving Quality of Life: Evaluation Using Clustering Approach

机译:用于改善生活质量的环境智能测试平台的性能评估:使用聚类方法的评估

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Ambient intelligence (AmI) deals with a new world of ubiquitous computing devices, where physical environments interact intelligently and unobtrusively with people. AmI environments can be diverse, such as homes, offices, meeting rooms, schools, hospitals, control centers, vehicles, tourist attractions, stores, sports facilities, and music devices. In this paper, we present the design and implementation of a testbed for AmI using Raspberry Pi mounted on Raspbian OS. We analyze the performance of k-means clustering algorithm. For evaluation we considered respiratory rate and heart rate metrics. The simulation results show that the k-means clustering algorithm has a good performance.
机译:环境智能(AmI)应对无处不在的计算设备的新世界,在该世界中,物理环境与人进行智能且毫不干扰的交互。 AmI环境可以是多种多样的,例如家庭,办公室,会议室,学校,医院,控制中心,车辆,旅游景点,商店,体育设施和音乐设备。在本文中,我们介绍了使用安装在Raspbian OS上的Raspberry Pi进行AmI测试平台的设计和实现。我们分析了k均值聚类算法的性能。为了进行评估,我们考虑了呼吸频率和心率指标。仿真结果表明,k均值聚类算法具有良好的性能。

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