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A Fuzzy Logic Approach for a Wearable Cardiovascular and Aortic Monitoring System

机译:一种可穿戴心血管和主动脉监测系统的模糊逻辑方法

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摘要

A new methodology for fault detection on wearable medical devices is proposed. The basic strategy relies on correctly classifying the captured physiological signals, in order to identify whether the actual cause is a wearer health abnormality or a system functional flaw. Data fusion techniques, namely fuzzy logic, are employed to process the physiological signals, like the electrocardiogram (ECG) and blood pressure (BP), to increase the trust levels of the captured data after rejecting or correcting distorted vital signals from each sensor, and to provide additional information on the patient's condition by classifying the set of signals into normal or abnormal condition (e.g. arrhythmia, chest angina, and stroke). Once an abnormal situation is detected in one or several sensors the monitoring system runs a set of tests in a fast and energy efficient way to check if the wearer shows a degradation of his health condition or the system is reporting erroneous values.
机译:提出了一种新的可穿戴医疗器械故障检测方法。基本策略依赖于正确分类捕获的生理信号,以确定实际原因是否是佩戴者健康异常或系统功能缺陷。数据融合技术,即模糊逻辑,用于处理生理信号,如心电图(ECG)和血压(BP),以在拒绝或纠正来自每个传感器的扭曲的重要信号之后增加捕获数据的信任级别,通过将信号集分类为正常或异常条件(例如心律失常,胸腺,卒中和中风)来提供有关患者条件的额外信息。一旦在一个或多个传感器中检测到异常情况,监控系统以快速和节能的方式运行一组测试,以检查佩戴者是否显示他的健康状况的劣化,或者系统报告错误值。

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