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Support vector regression-based synthesis of 12-lead ECG system from the standard 5 electrode system using lead V1

机译:使用铅V1从标准5电极系统中基于支持向量回归的12导联心电图系统合成

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The standard 12-lead electrocardiogram (ECG) is a fundamental but very efficient clinical method for heart disease diagnosis. Measuring all 12 leads is often cumbersome and impractical especially on a long term monitoring. There have been ways to reduce the number of electrodes in ECG system also from 10 down to 5 or 6 electrodes and various regression methods were applied to derive back those 12-lead ECG. This paper presents how Support Vector Regression (SVR) was used to find a set of transfer function for deriving the 12-lead ECG from the standard 5-electrode setting using lead V1 system. All dataset used in this work has been obtained from PhysioNet database consisting of 4,810 samples. Five-fold cross-validation was applied to find the best parameter of SVR. Two kernel functions, RBF and ERBF, have been explored and evaluated in this work. The experiments strongly presented that SVR methodology was worth considerate for synthesizing the 12-lead ECG signals from the standard 5-lead electrode system using V1. The results also showed ERBF kernel function gave better RMSE (Root Mean Square Error) than RBF kernel function in the case here.
机译:标准的12导联心电图(ECG)是用于心脏病诊断的基本但非常有效的临床方法。测量所有12条导线通常很麻烦且不切实际,尤其是在长期监控中。有一些方法可以将ECG系统中的电极数量也从10个减少到5个或6个,并且采用了各种回归方法来推导那些12导联ECG。本文介绍了如何使用支持向量回归(SVR)来找到一组传递函数,以使用Lead V1系统从标准5电极设置中导出12导联ECG。这项工作中使用的所有数据集都是从PhysioNet数据库中获得的,该数据库包含4,810个样本。应用五重交叉验证来找到SVR的最佳参数。在这项工作中,已经探索和评估了两个内核函数RBF和ERBF。实验强烈表明,SVR方法对于使用V1从标准5引线电极系统合成12引线ECG信号值得考虑。结果还表明,在这种情况下,ERBF内核函数比RBF内核函数具有更好的RMSE(均方根误差)。

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