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Separation of cardiorespiratory sounds using time-frequency masking and sparsity

机译:使用时频掩蔽和稀疏性分离心肺音

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Listening to cardiac and respiratory sounds called as auscultation is a non-invasive medical procedure, which provides useful information about the behavior of the heart and the lung. Cardiac and respiratory sounds interfere with each other as well as with other sounds like snore, speech or traffic noise, which compromises the effectiveness of auscultation. This paper addresses the problem of auscultation in complex auditory environments, inspired by the coincidence detection model which suggests sound localization via estimating interaural level difference and interaural time difference. The proposed method, exploits the sparsity of cardiac and respiratory sounds and makes use of a degenerate unmixing estimation technique (DUET), which uses only two observations to recover an arbitrary number of sources, which suits well in scenarios where the number of sources can vary. The DUET approach uses time-frequency analysis to produce a two dimensional histogram of attenuation-delay estimates, where peaks in the histogram indicate the sources in a mixture. A mask is computed using attenuation-delay mixing parameters to recover the original sources. It is shown that excellent time-frequency masks exist for cardiac and respiratory sounds. The performance of the proposed method is demonstrated through a series of experiments using real data, exhibiting superior source recovery than previous techniques.
机译:聆听被称为听诊的心脏和呼吸音是一种非侵入性的医疗程序,它可提供有关心脏和肺部行为的有用信息。心音和呼吸音会相互干扰,还会与其他声音(如打sn,语音或交通噪音)发生干扰,从而影响了听诊的效果。本文旨在解决巧合听觉模型在复杂听觉环境中听诊的问题,该模型通过估计听觉水平差和听觉时间差来建议声音的定位。所提出的方法利用了心脏和呼吸音的稀疏性,并利用了简并分解估计技术(DUET),该技术仅使用两个观测值即可恢复任意数量的声源,非常适合于声源数量可以变化的场景。 DUET方法使用时频分析来生成衰减延迟估计的二维直方图,其中直方图中的峰值指示混合物中的来源。使用衰减-延迟混合参数来计算掩模,以恢复原始信号源。结果表明,对于心脏和呼吸音,存在出色的时频掩膜。通过使用真实数据进行的一系列实验证明了所提出方法的性能,与以前的技术相比,该方法具有更好的源回收率。

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