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Detection and Diagnostic Approach of COVID-19 Based on Cough Sound Analysis

机译:基于咳嗽声分析的Covid-19检测与诊断方法

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Coronavirus (COVID-19) started at the end of 2019 and then spread out around the world as a pandemic at the beginning of 2020. At that time, researchers began to work on detecting and diagnosing this virus, where many methods have been applied for this reason. This study focuses on how to diagnose coronavirus through patients’ cough. Accordingly, real samples were taken from people infected by the coronavirus and others, who are suffering from some respiratory diseases. The cough of a person with coronavirus is characterized by its dryness and differs from other cough sounds through a set of factors that are considered for study and analysis through this study. Among these factors is the sound energy, which is found to be the most effective factor and hence implemented as a key indicator for COVID-19 detection. The discrete wavelet transform is the adopted method to realize the detection process via approximation and the analysis of coefficients details. The obtained results show acceptable detection accuracy for the considered samples. Minor mismatching in the detection process is noticed during the procedure, which is mainly due to some patients being infected with the respiratory diseases that exhibit similar symptoms.
机译:Coronavirus(Covid-19)于2019年底开始,然后在2020年初作为大流行发布。当时,研究人员开始探测和诊断这种病毒,其中许多方法已被申请这个原因。本研究重点介绍如何通过患者咳嗽诊断冠状病毒。因此,真正的样品被从感染的冠状病毒和其他人患有一些呼吸系统疾病的人群中取出。具有冠状病毒的人的咳嗽的特征在于它的干燥,与其他咳嗽声音不同,通过一系列因素通过本研究考虑研究和分析。在这些因素中是声能,被发现是最有效的因素,因此实施为Covid-19检测的关键指标。离散小波变换是通过近似和系数细节的分析来实现检测过程的采用方法。所获得的结果显示了考虑样本的可接受的检测精度。在程序期间注意到检测过程中的次要不匹配,主要是由于一些患者感染了具有类似症状的呼吸系统疾病。

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