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A Portable, Wireless Photoplethysomography Sensor for Assessing Health of Arteriovenous Fistula Using Class-Weighted Support Vector Machine

机译:用于评估使用类加权支持向量机评估动脉静脉瘘的健康的便携式无线光学谱分析传感器

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摘要

A portable, wireless photoplethysomography (PPG) sensor for assessing arteriovenous fistula (AVF) by using class-weighted support vector machines (SVM) was presented in this study. Nowadays, in hospital, AVF are assessed by ultrasound Doppler machines, which are bulky, expensive, complicated-to-operate, and time-consuming. In this study, new PPG sensors were proposed and developed successfully to provide portable and inexpensive solutions for AVF assessments. To develop the sensor, at first, by combining the dimensionless number analysis and the optical Beer Lambert’s law, five input features were derived for the SVM classifier. In the next step, to increase the signal-noise ratio (SNR) of PPG signals, the front-end readout circuitries were designed to fully use the dynamic range of analog-digital converter (ADC) by controlling the circuitries gain and the light intensity of light emitted diode (LED). Digital signal processing algorithms were proposed next to check and fix signal anomalies. Finally, the class-weighted SVM classifiers employed five different kernel functions to assess AVF quality. The assessment results were provided to doctors for diagonosis and detemining ensuing proper treatments. The experimental results showed that the proposed PPG sensors successfully achieved an accuracy of 89.11% in assessing health of AVF and with a type II error of only 9.59%.
机译:一种便携式,无线光电容积描记(PPG)用于评估通过使用类的加权支持向量机(SVM)动静脉瘘(AVF)传感器在本研究中提出的。如今,在医院,AVF是通过超声多普勒机,其体积庞大,价格昂贵评估,复杂到操作,且耗时。在这项研究中,新的PPG传感器被提出并研制成功,为AVF评估提供便携和廉价的解决方案。为了开发传感器,首先,通过将无量纲数分析和光啤酒兰伯特定律,五个输入功能源自于SVM分类。在下一步骤中,为了增加PPG信号的信号噪声比(SNR),所述前端的读出电路系统被设计为通过控制电路系统的增益和光强度充分利用模拟 - 数字转换器(ADC)的动态范围光发射二极管的(LED)。提出了数字信号处理算法旁边的检查和修复的信号异常。最后,类的加权SVM分类采用五个不同的核函数来评估AVF质量。评估结果提供给医生diagonosis和detemining随后的适当治疗。实验结果表明,该PPG传感器成功地在评估AVF的健康和仅为9.59%,Ⅱ型误差达到89.11%的准确度。

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