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Motion Artefact Removal using Single Beat Classification of Photoplethysmographic Signals

机译:使用光体积描记信号的单拍分类去除运动伪影

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A Photoplethysmographic (PPG) signal classification scheme for motion artefact detection is proposed. In the feature extraction, the PPG signal is modeled as a periodic signal with fundamental frequency and harmonics using a least-squares based algorithm. The extracted features correctly represent the morphological information of the PPG signal. A support vector machine (SVM) is used in the classification. A procedure is adopted to make the feature set scale and position independent, which improves the classification accuracy. Using 5 harmonics, a classification accuracy of 96.55% is achieved. As 26 different normal PPG morphologies are used in the classifier, the system would be able to identify any normal PPG signal among motion artefacts on a single beat basis.
机译:提出了一种用于运动人工检测的光电觉清晰度(PPG)信号分类方案。在特征提取中,使用基于基于比分的算法,PPG信号被建模为具有基频和谐波的周期性信号。提取的特征正确地表示PPG信号的形态学信息。在分类中使用支持向量机(SVM)。采用过程使特征设定规模和位置独立,从而提高了分类准确性。使用5次谐波,实现了96.55%的分类准确性。在分类器中使用26种不同的正常PPG形态,该系统将能够在单个节拍的基础上识别运动人工制品之间的任何正常PPG信号。

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