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A Method Based on Wavelet Packet Decomposition and Memory Antibody Clone Hybrid Clustering for Diagnosis of Clinical Heart Disorders

机译:一种基于小波分组分解和记忆抗体克隆杂交聚类的方法,用于诊断临床心脏病

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In this study, a method based on wavelet packet (WP) decomposition and memory antibody clone hybrid clustering (MACHC) for diagnosis of clinical heart disorder (HD) is proposed. From considering the fact that the frequency ranges of the normal and heart diseases sound are different from each other, the wavelet packet decomposition (WPD) at level 4 is used to split the frequency bandwidths of the clinical heart sound (CHS) signals. And then the WP energy (WPE) with the frequency information through the range of CHS signals is calculated. WPEs at the terminal nodes from (4,0) to (4,11) are selected and two parameters maxWPE and minWPE are used as the features. Furthermore, the MACHC technique is employed as the identification tool to classify the normal sound and CHSs. Finally, the performances of this method are evaluated in 156 samples that contain 42 normal and 114 abnormal subjects for clinical HDs. The results show that this technique is useful and effective to detect CHSs. The validation of the proposed method is measured by using the sensitivity, specificity and accuracy parameters. Over 94.91% sensitivity, 100% specificity and 96.25% accuracy rate are obtained
机译:在该研究中,提出了一种基于小波分组(WP)分解和记忆抗体克隆杂交聚类(MachC)的方法,用于诊断临床心脏病(HD)。考虑到正常和心脏病声音的频率范围彼此不同,水平4处的小波分组分解(WPD)用于分离临床心声(CHS)信号的频率带宽。然后,计算通过CHS信号范围的WP能量(WPE)通过CHS信号的范围。从(4,0)到(4,11)的终端节点处的WPES被选中,两个参数MaxWPE和MinWPE用作特征。此外,MACHC技术被用作分类正常声音和CHSS的识别工具。最后,在含有42个正常和114个异常对象的156个样品中评估该方法的性能,用于临床HDS。结果表明,该技术可用且有效地检测CHSS。通过使用灵敏度,特异性和准确性参数来测量所提出的方法的验证。超过94.91%的灵敏度,100%特异性和96.25%的精度率获得

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