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COVID-19 Related Pneumonia Detection in Lung Ultrasound.

Michael Stiven Ramirez Campos, Santiago Saavedra Bautista, Jose Vicente Alzate Guerrero,Sandra Cancino Suárez,Juan M. López López

MCPR(2021)

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Abstract
Accurate diagnosis plays an important role in the current public health situation caused by the Covid-19 outbreak. Ultrasound images offer some advantages over other imaging techniques due to their lowers costs; however, to the authors' knowledge, these type of images have not received as much attention as the other methods. This article describes a set of novel features for Covid-19 detection from lung ultrasound scans, obtained from the Pocovid database described in [3]. Two simultaneous approaches were considered: analysis and segmentation of the pleura, and highlighting of information from frame sequences through PCA and ICA. The proposed features were tested using machine learning models, achieving an average accuracy of 0.9, which considering the interpretability of the features and the complexity of the classification models used, is a good result.
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Key words
Covid-19,ICA,Pleura segmentation,PCA,Pneumonia,Machine learning
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