首页> 外文期刊>Journal of mechanics in medicine and biology >HEART MURMURS DETECTION AND CHARACTERIZATION USING WAVELET ANALYSIS WITH RENYI ENTROPY
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HEART MURMURS DETECTION AND CHARACTERIZATION USING WAVELET ANALYSIS WITH RENYI ENTROPY

机译:用Renyi熵使用小波分析的心脏杂音检测和表征

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摘要

Phonocardiogram signals (PCGs) represent a nonstationary signal due to their complicated production. Also, during the registration they may be added with different noise and pathological murmurs. Indeed, in real situation, the heart sound signal (HSs) may present some abnormal murmur characterizing a variety of heart diseases. This work deals with the segmentation of pathological PCGs based on the Discrete Wavelet Transform (DWT) which permits signal decomposition in different frequency bands. After the decomposition step, we estimate the Renyi Entropy (RE) of the detail coefficients. Then, we apply a threshold allowing detecting the murmur of the PCGs. After the detection, we characterize the results in time-frequency domain in order to extract some features such as frequency band, peak frequency and time duration of the abnormal murmur. The validation of the method is evaluated and proved using some pathological PCGs such as: Early Aortic Stenosis (EAS), Late Aortic Stenosis (LAS), Mitral Regurgitation (MR), Aortic Regurgitation (AR), Opening Snap (OS) and Pulmonary Stenosis (PS). The method presents good results in terms of the detection and the characterization of the main components and the abnormal murmurs associated with some valves disease.
机译:PhoneCardiogram信号(PCG)由于其复杂的生产而表示非标准信号。此外,在注册期间,它们可以添加不同的噪声和病理杂音。实际上,在实际情况下,心声信号(HSS)可能会出现一些异常的杂音,表征各种心脏病。这项工作涉及基于离散小波变换(DWT)的病理PCG的分割,该PCGS允许在不同频带中的信号分解。在分解步骤之后,我们估计细节系数的仁义熵(RE)。然后,我们应用允许检测PCG的杂音的阈值。检测后,我们在时频域中表征结果,以便提取一些特征,例如频带,峰值频率和持续时间的异常杂音。评估该方法的验证,并使用一些病理PCG进行评估,诸如:早期主动脉狭窄(EAS),晚主动脉狭窄(LAS),二尖瓣流动(MR),主动脉反流(AR),开蛛网(OS)和肺狭窄(PS)。该方法在检测和主要成分的表征和与一些瓣膜疾病相关的异常杂音的表征方面具有良好的结果。

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