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Unobtrusive human localization and activity recognition for supporting independent living of the elderly

机译:人性化的本地化和活动识别,以支持老年人的独立生活

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摘要

Indoor localization and activity recognition is a fundamental research topic for a wide range of important applications such as fall detection of elderly people. It usually requires an intelligent environment to successfully infer where and what a person is doing. However, many of the existing techniques on localization and activity recognition rely heavily on people's involvement such as wearing battery-powered sensors, which might not be practical in real-world situations (e.g., people may forget to wear sensors). In this project, we propose a device-free localization and activity recognition approach using passive RFID tags. It is achieved by learning how the Received Signal Strength Indicator (RSSI) from the passive RFID tag array is distributed when a person performs different activities in different locations. After activity patterns are discovered for a particular individual, we will also develop a context-aware, common-sense based activity reasoning engine that assists applications to make appropriate interpretation of detected activities. We believe the proposed system has the potential to better support the independent living of elderly people considering the continuously increased aging population.
机译:室内定位和活动识别是许多重要应用(例如,老年人跌倒检测)的基础研究主题。通常需要一个智能的环境才能成功推断一个人在哪里和在做什么。但是,许多有关定位和活动识别的现有技术在很大程度上依赖于人们的参与,例如戴电池供电的传感器,这在现实情况下可能不切实际(例如,人们可能忘记戴传感器)。在此项目中,我们提出了使用无源RFID标签的无设备定位和活动识别方法。通过学习当一个人在不同位置执行不同活动时如何分配来自无源RFID标签阵列的接收信号强度指示器(RSSI)来实现此目标。在发现特定个体的活动模式之后,我们还将开发一种基于上下文的,基于常识的活动推理引擎,该引擎可帮助应用程序对检测到的活动做出适当的解释。考虑到人口不断增加,我们认为拟议的系统有可能更好地支持老年人的独立生活。

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