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Machine Learning Based Decision Support System for Atrial Fibrillation Detection using Electrocardiogram

机译:基于机器学习的决策支持系统,用于使用心电图进行心房颤动检测

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Atrial Fibrillation (AF) is a common sustained arrhythmia encountered in regular clinical practice. In order to diagnose AF, Electrocardiogram (ECG) is used in correlation with clinical symptoms. ECG is noninvasive and cost effective modality in order to diagnose cardiac abnormalities using AF. The complexity of ECG and its interrelationship with other physiological parameters make the AF detection a challenging task in the clinical practice. The traditional practice of diagnosing AF manually by the physician can cause intra physician variability leading to a need for automated algorithm based assisting system to detect AF. In the present methodology, the QRS complex is detected and each beat in the entire signal is segmented, the median beat is calculated for a given signal, the dimensionality is reduced using Principal Component Analysis (PCA) and the resultant components along with energy values are used for classification using decision tree. The methodology provided an improved average accuracy of 85.1 percent which is reasonably high. The system developed can be used in many practical applications and can provide acceptable results in clinical implementations. The developed methodology can be used as an adjunct tool by the physician in his clinical practice.
机译:心房颤动(AF)是常规临床实践中遇到的常见持续心律失常。为了诊断AF,心电图(ECG)用于与临床症状相关。 ECG是非侵入性和成本效益的方式,以诊断使用AF的心脏异常。 ECG的复杂性及其与其他生理参数的相互关系使AF检测临床实践中的具有挑战性的任务。通过医生手动诊断AF的传统实践可能导致内部医生变异,导致基于自动算法的辅助系统检测AF。在本方法中,检测QRS复合物并在整个信号中分段每个信号进行分段,为给定信号计算中值,使用主成分分析(PCA)减少维度,并且所得组件与能量值一起减少。用于使用决策树进行分类。该方法提供了85.1%的改善的平均精度,其合理高。该系统开发的系统可用于许多实际应用,并且可以在临床实现中提供可接受的结果。开发的方法可以用作医生的临床实践中的辅助工具。

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