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Fall Detection Using Smartwatch Sensor Data with Accessor Architecture

机译:使用智能手表传感器数据使用带有Accordoror架构的崩溃检测

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This paper proposes using a commodity-based smartwatch paired with a smartphone for developing a fall detection IoT application which is non-invasive and privacy preserving. The majority of current fall detection applications require specially designed hardware and software which make them expensive and inaccessible to the general public. We demonstrated that by collecting accelerometer data from a smartwatch and processing those data in a paired smartphone, it is possible to reliability detect (93.8% accuracy) whether a person has encountered a fall in real-time. By wearing a smartwatch as a piece of jewelry, the well-being of a person can be monitored in real-time at anytime and anywhere as contrasted to being confined in a particular facility installed with special sensors and cameras. Using simulated fall data acquired from volunteers, we trained a fall detection model off-line that can be composed with a data collection accessor to continuously analyze accelerometer data gathered from a smartwatch to detect minor or serious fall at anytime and anywhere. The accessor-based architecture allows easy composition of the fall-detection IoT application tailored to heterogeneity of devices and variation of user's need.
机译:本文建议使用与智能手机配对的基于商品的SmartWatch,用于开发一个非侵入性和隐私保留的秋季检测IOT应用程序。大多数当前的跌倒检测应用需要专门设计的硬件和软件,使其使其昂贵,普通公众无法访问。我们展示了通过从SmartWatch收集加速度计数据并在配对的智能手机中处理这些数据,可以可靠性检测(精度为93.8%)一个人是否遇到实时跌倒。通过戴着智能手表作为一块珠宝,可以随时随地实时监测一个人的福祉,以便在用特殊传感器和摄像机安装的特定设施中被局限于束缚。使用从志愿者获取的模拟秋季数据,我们培训了落地检测模型离线,可以使用数据收集访问器组成,以连续地分析从SmartWatch收集的加速度计数据,以便在随时随地检测轻微或严重落下。基于配件的架构允许轻松构成用于设备的异质性和用户需求的异质性和用户需求的变化。

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