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Wearable sensor data fusion for remote health assessment and fall detection

机译:远程健康评估和跌倒检测的可穿戴传感器数据融合

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摘要

In this paper, we present the system architecture and design flow for remote user physiological data and movement detection using wearable sensor data fusion. Our design utilizes an Android smartphone to integrate and process multiple body sensor data to enhance the reliability for remote health diagnosis. Various sensor data such as body temperature, current geographical location, electrocardiography, body posture and fall detection data are collected using concurrent Bluetooth connections to the Android smartphone. Our Android application software is designed to handle real-time analysis of collected sensor data to determine current user status, such as instant heart beat rate, body orientation and possible fall recognition. With the help of the Internet connection on the Android smartphone, the system communicates with a remote server and a designated contact person to log sensor data, and to notify authorized professionals in case of an emergency situation. Our system is highly valuable for remote and mobile patient monitoring and diagnosis. This design flow can be extended to condition assessments in various environments and it is not limited to body temperature, current geographical location, electrocardiography, body posture and fall detection.
机译:在本文中,我们提出的系统体系结构和设计流程用于使用可穿戴式传感器数据融合远程用户的生理数据和运动检测。我们的设计利用了Android智能集成和处理多个身体传感器数据,以增强对远程健康诊断的可靠性。各种传感器数据,例如体温,当前地理位置,心电图,身体姿势和跌倒检测数据正在使用,以Android智能并发蓝牙连接收集。我们的Android应用软件被设计用来处理收集的传感器数据的实时分析,以确定当前用户状态,如即时心脏跳动速度,身体方向和可能的下跌认可。随着对Android智能手机的互联网连接的帮助下,与远程服务器和指定联系人的系统通信记录传感器的数据,并在紧急情况下通知授权的专业人士。我们的系统是远程和移动监测患者的诊断非常有价值。这种设计流可在各种环境中被扩展到条件评估和它不限于体温,当前地理位置,心电图,身体姿势和坠落检测。

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