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ECG denoising based on probability of wavelet coefficients

机译:基于小波系数概率的ECG去噪

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Heart failure and heart diseases are among the main causes of death in the world. Therefore it is necessary to have proper tools to determine the heart condition of the patient. ECG is considered to be the most efficient diagnostic tool to check the functionality of the heart. Hence accurate analysis of ECG signal is important. But it is difficult to analyze an ECG signal if it is corrupted by noise during acquisition. Thus, noise removal becomes an essential part in ECG analysis and characterization. In this paper, we proposed a wavelet based denoising technique. In this technique, denoising is done by thresholding the less significant wavelet coefficients. Here the threshold is based on the probability of the wavelet coefficients at a particular sub-band. Two parameters Signal-to-Error Ratio (SER) and Percent Root Mean Square Difference (PRD) are calculated to evaluate the performance of the proposed denoising method. The database used for testing purpose is taken from MIT-BIH. The results show that the proposed method provides encouraging results for denoising.
机译:心力衰竭和心脏病是世界上主要的死亡原因之一。因此,有必要使用适当的工具来确定患者的心脏状况。心电图被认为是检查心脏功能的最有效的诊断工具。因此,准确分析ECG信号非常重要。但是,如果在采集过程中被噪声破坏,则很难分析ECG信号。因此,噪声消除成为心电图分析和表征中必不可少的部分。在本文中,我们提出了一种基于小波的去噪技术。在该技术中,通过对次要小波系数进行阈值化来进行去噪。在此,阈值基于特定子带处的小波系数的概率。计算了两个参数信噪比(SER)和均方根差百分比(PRD),以评估所提出的降噪方法的性能。用于测试目的的数据库来自MIT-BIH。结果表明,所提出的方法为去噪提供了令人鼓舞的结果。

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