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Evaluation of Performance Metrics and Denoising of PCG Signal using Wavelet Based Decomposition

机译:基于小波分解的PCG信号的性能指标评估和去噪

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Phonocardiogram (PCG) signal contains significant bio-acoustic information reflecting the operation of the heart, and is used to detect the various diseases related to heart valve. But it is highly susceptible to noise, and the sources of noise includes lung and breath sounds, noise from contact between the recording device and skin, environmental noise, etc. Hence, denoising of PCG signal is very important for the proper diagnosis of heart diseases. In this paper, a discrete wavelet transform (DWT) based threshold tuning is investigated to deliver denoised PCG signal. The performance of the denoising algorithm is evaluated using different metrics such as mean-square error, normalized-mean-square error, root-mean-square error, percentage root-mean-square difference, and signal-to-noise ratio by determining the most suitable parameters (wavelet family, level of decomposition, and thresholding type) for the denoising process. The evaluation results obtained from the different metrics gives the best denoising performance from the reconstructed PCG signal.
机译:PhonicardioGram(PCG)信号包含反映心脏操作的重要生物声学信息,用于检测与心脏瓣膜相关的各种疾病。但它非常易受噪音,噪音源包括肺和呼吸声,噪音从记录装置和皮肤之间的接触,环境噪声等,因此,PCG信号的去噪对于适当的心脏病诊断非常重要。在本文中,研究了基于离散的小波变换(DWT)的阈值调谐,以提供去噪的PCG信号。使用不同的度量评估去致算法的性能,例如均方误差,归一化均方误差,根均方误差,百分比根均衡百分比和信噪比,并通过确定用于去噪过程的最合适的参数(小波家族,分解水平和阈值型)。从不同度量获得的评估结果提供了来自重建PCG信号的最佳去噪性能。

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