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Design and Implementation of an Ultra-Low Resource Electrodermal Activity Sensor for Wearable Applications

机译:用于穿戴式应用的超低资源电皮活动传感器的设计与实现

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摘要

While modern low-power microcontrollers are a cornerstone of wearable physiological sensors, their limited on-chip storage typically makes peripheral storage devices a requirement for long-term physiological sensing—significantly increasing both size and power consumption. Here, a wearable biosensor system capable of long-term recording of physiological signals using a single, 64 kB microcontroller to minimize sensor size and improve energy performance is described. Electrodermal (EDA) signals were sampled and compressed using a multiresolution wavelet transformation to achieve long-term storage within the limited memory of a 16-bit microcontroller. The distortion of the compressed signal and errors in extracting common EDA features is evaluated across 253 independent EDA signals acquired from human volunteers. At a compression ratio (CR) of 23.3×, the root mean square error (RMSErr) is below 0.016 μS and the percent root-mean-square difference (PRD) is below 1%. Tonic EDA features are preserved at a CR = 23.3× while phasic EDA features are more prone to reconstruction errors at CRs > 8.8×. This compression method is shown to be competitive with other compressive sensing-based approaches for EDA measurement while enabling on-board access to raw EDA data and efficient signal reconstructions. The system and compression method provided improves the functionality of low-resource microcontrollers by limiting the need for external memory devices and wireless connectivity to advance the miniaturization of wearable biosensors for mobile applications.
机译:尽管现代低功耗微控制器是可穿戴生理传感器的基石,但其有限的片上存储通常使外围存储设备成为长期生理感测的必要条件,从而显着增加了尺寸和功耗。在此,描述了一种可穿戴生物传感器系统,该系统能够使用单个64 kB微控制器长期记录生理信号,以最小化传感器尺寸并提高能量性能。使用多分辨率小波变换对皮肤电(EDA)信号进行采样和压缩,以在16位微控制器的有限内存中实现长期存储。在从人类志愿者那里获得的253个独立的EDA信号中,评估了压缩信号的失真和提取通用EDA特征时的错误。在23.3x的压缩比(CR)下,均方根误差(RMSErr)低于0.016 μ S,并且均方根差百分比(PRD)低于1%。补品EDA特征在CR = 23.3x时得以保留,而在Es> 8.8x时,相态EDA特征更容易出现重建误差。该压缩方法显示出与其他基于ESD测量的基于压缩感测的方法相比具有竞争优势,同时可以在板上访问原始EDA数据并进行有效的信号重建。所提供的系统和压缩方法通过限制对外部存储设备和无线连接的需求来改善低资源微控制器的功能,以促进可移动生物传感器的可小型化。

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