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A Novel Classification Technique of Arteriovenous Fistula Stenosis Evaluation Using Bilateral PPG Analysis

机译:基于双边PPG分析的动静脉瘘狭窄评估的新分类技术

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摘要

The most common treatment for end-stage renal disease (ESRD) patients is the hemodialysis (HD). For this kind of treatment, the functional vascular access that called arteriovenous fistula (AVF) is done by surgery to connect the vein and artery. Stenosis is considered the major cause of dysfunction of AVF. In this study, a noninvasive approach based on asynchronous analysis of bilateral photoplethysmography (PPG) with error correcting output coding support vector machine one versus rest (ESVM-OVR) for the degree of stenosis (DOS) evaluation is proposed. An artificial neural network (ANN) classifier is also applied to compare the performance with the proposed system. The testing data has been collected from 22 patients at the right and left thumb of the hand. The experimental results indicated that the proposed system could provide positive predictive value (PPV) reaching 91.67% and had higher noise tolerance. The system has the potential for providing diagnostic assistance in a wearable device for evaluation of AVF stenosis.
机译:终末期肾病(ESRD)患者最常用的治疗方法是血液透析(HD)。对于这种治疗,称为动静脉瘘(AVF)的功能性血管通路是通过手术连接静脉和动脉来完成的。狭窄被认为是AVF功能障碍的主要原因。在这项研究中,提出了一种基于双侧光体积描记术(PPG)异步分析的无创方法,其中误差校正输出编码支持向量机一对静止(ESVM-OVR)用于评估狭窄程度(DOS)。人工神经网络(ANN)分类器也被用来与所提出的系统进行性能比较。测试数据是从22例左右手的患者那里收集的。实验结果表明,所提出的系统可以提供91.67%的正预测值(PPV),并且具有较高的噪声容忍度。该系统具有在可穿戴设备中提供诊断辅助以评估AVF狭窄的潜力。

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