The Identification of Peaks in Physiological Signals

Bryan S. Todd, David C. Andrews
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引用次数: 60

Abstract

The identification of peaks is fundamental in the processing of physiological signals. For example, it is common to the analysis of electrocardiograms, electroencephalograms, sympathetic neuronal activity, pulse oximetry, respiratory movement, hormone pulse secretion, and even chromatography. Often it is necessary to detect peaks in real time, but the task is frequently complicated by baseline wander and other interference. Current approaches to the problem tend to be complicated, specific to a particular domain, and reliant on several tunable parameters. There is a need for a simple and general mathematical formalization of peaks and troughs that has easily examinable properties and is readily implementable as an efficient algorithm. In this paper we present such a mathematical model together with an algorithm for the detection of peaks and troughs. We illustrate the generality of the method with some actual physiological data.
生理信号峰的识别
峰的识别是生理信号处理的基础。例如,它在心电图、脑电图、交感神经元活动、脉搏血氧仪、呼吸运动、激素脉冲分泌、甚至色谱分析中都是常见的。通常需要实时检测峰值,但由于基线漂移和其他干扰,任务经常变得复杂。当前解决该问题的方法往往很复杂,特定于特定领域,并且依赖于几个可调参数。需要对波峰和波谷进行简单和一般的数学形式化,这种形式化具有易于检查的性质,并且易于作为一种有效的算法实现。在本文中,我们提出了一个这样的数学模型和一种检测波峰和波谷的算法。我们用一些实际的生理数据来说明该方法的普遍性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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