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Discomfort Monitoring System using IoT applied to a Wheelchair

机译:使用物联网应用于轮椅的不适监控系统

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摘要

A wide variety of wheelchairs are already available in the market. However, discomfort monitoring is also not a standard feature for it. There are several types of discomfort that wheelchair users experience. This study mainly focuses on feelings of distress, such as wetness discomfort due to human wastes like urine. It also focuses on the uneven distribution of pressure on the surface, resulting in pressure sores and monitoring the user's stress through heart rate analysis and skin conductance. The discomfort monitoring system uses ECG, GSR, Wetness, and Pressure Sensors. With the ReLU activation function, the design used a neural network to predict the discomfort level felt by the user. IoT applications in the system include user detection, an LED indicator for the discomfort level, SMS alerts, and the execution of emergency calls. Based on the results, all the features extracted from the four sensors exhibited correlation to the discomfort felt by the user. The most correlated parameter to the discomfort level is from the ECG, next is pressure, followed by wetness, and lastly, GSR.
机译:市场上已经提供了各种各样的轮椅。然而,不适监测也不是它的标准特征。轮椅用户体验有几种类型的不适。这项研究主要侧重于痛苦的感觉,例如尿液等人类废物引起的湿润不适。它还专注于表面上压力的不均匀分布,导致压力溃疡并通过心率分析和皮肤传导监测用户的应力。不适监控系统使用ECG,GSR,湿度和压力传感器。利用Relu激活功能,该设计使用神经网络来预测用户感受到的不适水平。系统中的IoT应用程序包括用户检测,用于不适级别的LED指示器,短信警报和紧急呼叫的执行。根据结果​​,从四个传感器中提取的所有功能都表现出与用户感觉的不适相关的相关性。对于不适水平的最相关的参数来自心电图,接下来是压力,然后是湿度,最后,GSR。

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