首页> 外文期刊>Journal of mechanics in medicine and biology >A COMBINED PCA-ICA STATISTICAL APPROACH AND QUADRATIC SPLINE WAVELETS FOR DETECTION OF R-PEAKS AND HEART RATE ESTIMATIONS IN ELECTROCARDIOGRAMS
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A COMBINED PCA-ICA STATISTICAL APPROACH AND QUADRATIC SPLINE WAVELETS FOR DETECTION OF R-PEAKS AND HEART RATE ESTIMATIONS IN ELECTROCARDIOGRAMS

机译:心电图中R-峰检测和心率估计的组合PCA-ICA统计方法和二次样条小波

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摘要

The need for the possible improvements in the proposed algorithm is felt toward more effective filtering in the principal component analysis (PCA) preprocessing stage itself, as well for better variance threshold adjustment. Using composite wavelet transform (WT)-based PCA-ICA methods helps for redundant data reduction as well for better feature extraction. This article discusses some of the conditions of ICA that could affect the reliability of the separation and evaluation of issues related to the properties of the signals and number of sources. In this analysis, a new statistical algorithm is proposed, based on the use of combined PCA-ICA for the three correlated channels of 12-channel electrocardiographic (ECG) data. This study also deals with the detection of QRS complexes in electrocardiograms using combined PCA-ICA algorithm. The efficacy of the combined PCA-ICA algorithm lies in the fact that the location of the R-peaks is accurately determined, and none of the peaks are ignored or missed, as quadratic spline wavelet is also used. With (WT)-based methods, PCA and ICA are used not only for preprocessing, but may also be used for postprocessing based on the requirements, whether ICA is used first then PCA or vice versa.
机译:对于主成分分析(PCA)预处理阶段本身中更有效的滤波以及更好的方差阈值调整,人们认为需要对提出的算法进行可能的改进。使用基于复合小波变换(WT)的PCA-ICA方法有助于减少冗余数据,以及更好地提取特征。本文讨论了可能影响ICA分离和评估与信号特性和信号源数量有关的问题的可靠性的一些条件。在此分析中,基于结合的PCA-ICA对12通道心电图(ECG)数据的三个相关通道的使用,提出了一种新的统计算法。这项研究还涉及使用组合PCA-ICA算法检测心电图中QRS络合物。组合式PCA-ICA算法的功效在于,可以准确确定R峰的位置,并且也可以使用二次样条小波,因此不会忽略或遗漏任何峰。使用基于(WT)的方法,PCA和ICA不仅用于预处理,而且根据要求还可以用于后处理,无论先使用ICA,然后使用PCA,反之亦然。

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