Feature Extraction Based on Circular Summary Statistics in ECG Signal Classification

Gustavo Soto, Sergio Torres
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引用次数: 1

Abstract

In order to explore new patterns for classification of cardiac signals, taken from the electrocardiogram (ECG), the circular statistic approach is introduced. Features are extracted from instantaneous phase of ECG signal using the analytic signal model based on the Hilbert transform theory. Feature vectors are used as patterns to distinguish among different ECG signals. Five types of ECG signals are obtained from MIT-BIH database. Preliminar results shown that the proposed features can be used on ECG signal classification problem.
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基于循环汇总统计的心电信号分类特征提取
为了探索心电信号分类的新模式,引入了循环统计方法。利用基于希尔伯特变换理论的分析信号模型,从心电信号的瞬时相位提取特征。利用特征向量作为模式来区分不同的心电信号。从MIT-BIH数据库中获得五种类型的心电信号。初步结果表明,所提出的特征可以用于心电信号的分类问题。
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