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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Wavelet-based enhancement of lung and bowel sounds using fractal dimension thresholding-part I: methodology
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Wavelet-based enhancement of lung and bowel sounds using fractal dimension thresholding-part I: methodology

机译:分形维数阈值法基于小波的肺和肠声音增强-第一部分:方法论

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摘要

An efficient method for the enhancement of lung sounds (LS) and bowel sounds (BS), based on wavelet transform (WT), and fractal dimension (FD) analysis is presented in this paper. The proposed method combines multiresolution analysis with FD-based thresholding to compose a WT-FD filter, for enhanced separation of explosive LS (ELS) and BS (EBS) from the background noise. In particular, the WT-FD filter incorporates the WT-based multiresolution decomposition to initially decompose the recorded bioacoustic signal into approximation and detail space in the WT domain. Next, the FD of the derived WT coefficients is estimated within a sliding window and used to infer where the thresholding of the WT coefficients has to happen. This is achieved through a self-adjusted procedure that iteratively "peels" the estimated FD signal and isolates its peaks produced by the WT coefficients corresponding to ELS or EBS. In this way, two new signals are constructed containing the useful and the undesired WT coefficients, respectively. By applying WT-based multiresolution reconstruction to these two signals, a first version of the desired signal and the background noise is provided, accordingly. This procedure is repeated until a stopping criterion is met, finally resulting in efficient separation of the ELS or EBS from the background noise. The proposed WT-FD filter introduces an alternative way to the enhancement of bioacoustic signals, applicable to any separation problem involving nonstationary transient signals mixed with uncorrelated stationary background noise. The results from the application of the WT-FD filter to real bioacoustic data are presented and discussed in an accompanying paper.
机译:本文提出了一种基于小波变换(WT)和分形维数(FD)分析的增强肺音(LS)和肠音(BS)的有效方法。所提出的方法将多分辨率分析与基于FD的阈值相结合以组成WT-FD滤波器,以增强爆炸物LS(ELS)和BS(EBS)与背景噪声的分离。尤其是,WT-FD滤波器结合了基于WT的多分辨率分解,以将记录的生物声学信号初始分解为WT域中的近似空间和细节空间。接下来,在滑动窗口内估计导出的WT系数的FD,并用于推断必须在何处进行WT系数的阈值化。这是通过自我调整的过程实现的,该过程反复“剥离”估计的FD信号并隔离由对应于ELS或EBS的WT系数产生的峰值。这样,构造了两个新信号,分别包含有用的和不希望的WT系数。通过将基于WT的多分辨率重建应用于这两个信号,相应地提供了期望信号的第一版本和背景噪声。重复此过程,直到满足停止标准为止,最终导致ELS或EBS与背景噪声的有效分离。提出的WT-FD滤波器引入了一种增强生物声信号的替代方法,适用于涉及非平稳瞬态信号与不相关的固定背景噪声混合的任何分离问题。 WT-FD滤波器应用于实际生物声学数据的结果将在随附的论文中进行介绍和讨论。

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