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Automated fundamental heart sound detection using spectral clustering technique

机译:使用光谱聚类技术自动化的基本心脏声音检测

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For automated analysis of heart sound the first and essential step is detection of the position of fundamental heart sounds (S1 and S2) within a Phonocardiogram (PCG) signal. In this study we propose an acoustic feature based technique for efficient localization of S1-S2 and non S1-S2 segments of a PCG signal. While envelop extraction based methods have been shown moderate successful outcomes, we have proposed a spectral clustering based technique which uses the power spectral density (PSD) as the input feature. The clustering algorithm has been utilized to group the signal into two clusters. Proposed method has been obtained a high true positive rate of 99.45% and low false alarm of 0.14%.
机译:对于心脏声音的自动分析,第一和基本步骤是检测对音乐仪(PCG)信号内的基本心脏声音(S1和S2)的位置。在该研究中,我们提出了一种基于声学特征的技术,用于PCG信号的S1-S2和非S1-S2段的有效定位。虽然被包围的提取基于方法已经显示了适度的成功结果,但我们提出了一种基于光谱聚类的技术,其使用功率谱密度(PSD)作为输入特征。聚类算法已被利用将信号分组为两个簇。提出的方法已经获得了99.45℃的高真正阳性率,低误报为0.14 %。

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