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Heart murmurs extraction using the complete Ensemble Empirical Mode Decomposition and the Pearson distance metric

机译:使用完整的集合经验模式分解和Pearson距离度量来提取Heart Murmurs提取

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Signal processing for pathological heart sound signals can be considered as a fundamental part of the whole process in tele-auscultation systems. In this paper, we employ the CEEMD and the EEMD algorithm to decompose various pathological heart sound signals in the form of phonocardiograph (PCG) signals. Following the decomposition process, we subsequently extract murmurs from the targeted heart sound signals using our proposed technique that based on the Pearson distance metric. Performance analysis of the decomposition algorithms as well as the extraction method is evaluated in terms of delta SNR that signifies variance comparison of targeted signal before and after murmurs extraction. It can be concluded that in general pathological heart sound signals that have been decomposed by the CEEMD algorithm followed by the Pearson distance metric for murmurs extraction, provide the finest murmurs extraction than the EEMD. Additionally, the EEMD algorithm involves smaller number of modes to form the extracted murmurs signal as compared to the CEEMD algorithm. However, employing the CEEMD algorithm produces higher number of shifting procedures causing higher computational complexity than the EEMD algorithm.
机译:用于病理心声信号的信号处理可以被认为是远程化系统中整个过程的基本部分。在本文中,我们采用CeEMD和EEMD算法以音盲(PCG)信号的形式分解各种病理心声信号。在分解过程之后,我们随后使用基于Pearson距离度量的所提出的技术从目标心声信号中提取杂音。根据Delta SNR评估分解算法以及提取方法的性能分析,其表示杂音提取前后有针对性信号的方差比较。可以得出结论,在一般的病理心脏声音信号中,通过CeeMD算法进行了分解,然后是杂音提取的PeeMD距离度量,提供比EEMD的最佳杂音提取。另外,与CEEMD算法相比,EEMD算法涉及较少数量的模式以形成提取的杂音信号。然而,采用CEEMD算法产生较高数量的转换过程,导致比EEMD算法更高的计算复杂性。

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