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KPD Based Signal Preprocessing Algorithm for Pulse Diagnosis

机译:基于KPD的脉冲诊断信号预处理算法

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摘要

In the traditional Chinese medicine (TCM) wrist pulse diagnosis plays a major role in detecting the health status of an individual. It depends strongly on the doctors' long-term experience as well as on their different inferences. Being subjective and based on long-term experience, pulse detection methods are difficult to standardize. Kim pulse diagnosis (KPD), established by Wei Jin, is an efficient method validated by both traditional Chinese medicine and in recent years also by western medicine. The key step to automatic implementation of KPD, using signal processing and analysis, is the developed KPD signal acquisition device. However, the raw wrist pulse signal acquired from KPD device includes a significant amount of noise. This paper proposes several preprocessing algorithms for pulse diagnosis, that includes wavelet transform and Gaussian filter to remove noise and the iterative sliding window (ISW) algorithm to remove the baseline wander and split the continuous signal into single periods. Experimental results show, that the algorithm for baseline wander removal is efficient and that the segmented signal matches the signal described in KPD.
机译:在传统中医(TCM)中,腕部脉搏诊断在检测个人健康状况中起着重要作用。这在很大程度上取决于医生的长期经验以及他们的不同推论。由于主观且基于长期经验,脉冲检测方法难以标准化。魏晋(Kim Jin)建立的金脉诊断(KPD)是一种有效的方法,已得到中药和近年来西药的验证。使用信号处理和分析自动执行KPD的关键步骤是开发的KPD信号采集设备。但是,从KPD设备获取的原始手腕脉冲信号包含大量噪声。本文提出了几种用于脉冲诊断的预处理算法,包括小波变换和高斯滤波器以消除噪声,以及迭代滑动窗口(ISW)算法以消除基线漂移并将连续信号分成单个周期。实验结果表明,用于基线漂移的算法是有效的,并且分段信号与KPD中描述的信号匹配。

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