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Assessment of Lung Diseases from Features Extraction of Breath Sounds Using Digital Signal Processing Methods

机译:利用数字信号处理方法评估来自呼吸声的特征的肺病

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Air movement through the respiratory system generates sound commonly known as breath sounds or Lung sounds (LS). Auscultation can detect abnormalities in airflow in the respiratory system, which is caused by lung diseases. Change in airflow patterns can also change the sounds generated in the respiratory process, causing abnormal or adventitious Lung sounds. Traditional analog auditory stethoscopes require profound concentration by expert physicians and acquired data can't be stored. In this paper, a non-invasive, non-hazardous way of collecting and analyzing lung sounds by the Digital signal processing (DSP) method is proposed. Lung sounds collected by the auscultation process were then digitized. Various features (Rms, Zero Crossings, Turn Count, Mean, Variance, Form Factor) were extracted from the digitized data stream using DSP methods. The developed system uses significant components like-(1) traditional listening, (2) visual presentation of raw data, and (3) extracted features using DSP methods, which then can be used for assessment of lung diseases.
机译:通过呼吸系统的空气运动产生常见称为呼吸声或肺部声音(LS)的声音。听诊可以检测呼吸系统中气流的异常,这是由肺病引起的。气流模式的变化也可以改变呼吸过程中产生的声音,导致异常或不定肺声音。传统的模拟听觉听诊器需要专家医师的深刻浓度,并且无法存储收购数据。本文提出了一种通过数字信号处理(DSP)方法的非侵入性,非危险方式和分析肺部声音。然后将由听诊过程收集的肺部声音数字化。使用DSP方法从数字化数据流中提取各种特征(RMS,零交叉,转数,平均值,方差,形状因子)。开发系统使用显着的组件 - (1)传统收听,(2)原始数据的视觉呈现,(3)使用DSP方法提取的特征,然后可用于评估肺病。

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