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Separation of PCG signal from Mixture of Speech and PCG Signals with Genetic Algorithm-Based Filter Banks

机译:基于遗传算法的滤波器组从语音和PCG信号混合中分离PCG信号

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The aim of the paper is to separate the phonocardiographic (PCG) signal from the mixture of PCG and speech signals. Therefore, genetic algorithm (GA) based filter-banks approach has been used to separate the signal. In this proposed technique, speech signal was modified and then subtracted from mixed signal to obtain the PCG signal. The modification in the speech was performed by modifying the short-time Fourier transform magnitude response. The magnitude response was further decomposed into nine filter-banks, each of bandwidth 50 Hz, upto 450 Hz. The magnitude components in each filter-band were varied with the weights of GA. The phase component was not modified. Extracted PCG signals were evaluated using Mel-frequency cepstral coefficients (MFCCs) based Mahalanobis distance measure and perceptual evaluation of speech quality. It is observed that GA performs well to extract PCG signal form mixture, with population size 30, number of weights 10 and the number of iterations less than 80. The proposed technique shows better accuracy than FastICA, however, the main limitation of the GA-based filter banks is the time complexity arising due to the involvement of iterative behavior.
机译:本文的目的是将心电图(PCG)信号与PCG和语音信号的混合物分开。因此,已经使用基于遗传算法(GA)的滤波器组方法来分离信号。在这种提出的技术中,语音信号被修改,然后从混合信号中减去以获得PCG信号。通过修改短时傅立叶变换幅度响应来执行语音中的修改。幅度响应进一步分解为9个滤波器组,每个滤波器组的带宽为50 Hz,最高为450 Hz。每个滤波器带中的幅度分量都随GA的权重而变化。相位分量未修改。提取的PCG信号使用基于Mahalanobis距离测量的梅尔频率倒谱系数(MFCC)和语音质量的感知评估进行评估。可以看出,GA能够很好地提取PCG信号形式的混合信号,其种群大小为30,权重数为10,迭代次数小于80。所提出的技术显示出比FastICA更好的准确性,但是,GA-的主要局限性在于基于滤波器的库是由于迭代行为的介入而产生的时间复杂度。

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