Remote Monitoring and Analysis of Human Lung Sound

Abhishek Banik, R. S. Anand, M. A. Ansari
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引用次数: 5

Abstract

Respiratory illness is recognized internationally as one of the commonest medical disorders affecting the world's populous countries. The identification of continuous abnormal lung sounds, like adventitious breath sounds in the total breathing cycle is of great importance in the diagnosis of obstructive airways pathologies. To this vein, the current work introduces an efficient method for the detection of wheezes, crackles, stridor, pleural rub and bronchial breath sounds as well as the remote monitoring of such sounds. In this work wheezes have been detected using frequency duration dependant threshold (FDDT) algorithm which is better than the other algorithms in respect to the fact they are based on human auditory modeling and does not have any ambiguity while deciding whether a particular signal is wheeze or not.
人体肺声的远程监测与分析
呼吸系统疾病是国际上公认的影响世界人口众多国家的最常见的医学疾病之一。识别连续的异常肺音,如全呼吸循环中的不定式呼吸音,对阻塞性气道病变的诊断具有重要意义。在此基础上,本文介绍了一种检测喘息声、噼啪声、喘鸣声、胸膜摩擦声和支气管呼吸声的有效方法,以及对这些声音的远程监测。在这项工作中,使用频率持续时间相关阈值(FDDT)算法检测喘息,该算法优于其他算法,因为它们基于人类听觉建模,并且在确定特定信号是否为喘息时没有任何歧义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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