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Path length entropy analysis of diastolic heart sounds

机译:舒张期心音的路径长度熵分析

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摘要

Early detection of coronary artery disease (CAD) using the acoustic approach, a noninvasive and cost-effective method, would greatly improve the outcome of CAD patients. To detect CAD, we analyze diastolic sounds for possible CAD murmurs. We observed diastolic sounds to exhibit 1/. f structure and developed a new method, path length entropy (PLE) and a scaled version (SPLE), to characterize this structure to improve CAD detection. We compare SPLE results to Hurst exponent, Sample entropy and Multiscale entropy for distinguishing between normal and CAD patients. SPLE achieved a sensitivity-specificity of 80%-81%, the best of the tested methods. However, PLE and SPLE are not sufficient to prove nonlinearity, and evaluation using surrogate data suggests that our cardiovascular sound recordings do not contain significant nonlinear properties.
机译:使用声学方法(一种无创且具有成本效益的方法)及早发现冠状动脉疾病(CAD),将大大改善CAD患者的预后。为了检测CAD,我们分析了舒张声音,以了解可能的CAD杂音。我们观察到舒张期声音显示为1 /。 f结构并开发了一种新方法,即路径长度熵(PLE​​)和缩放版本(SPLE),以表征该结构以改善CAD检测。我们将SPLE结果与Hurst指数,样本熵和多尺度熵进行比较,以区分正常患者和CAD患者。 SPLE达到了80%-81%的灵敏度特异性,这是测试方法中最好的。但是,PLE和SPLE不足以证明非线性,并且使用替代数据进行的评估表明,我们的心血管录音没有明显的非线性特性。

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