POCOVID-Net: Automatic Detection of COVID-19 From a New Lung Ultrasound Imaging Dataset (POCUS)
Jannis Born, Gabriel Br\"andle, Manuel Cossio, Marion Disdier, Julie, Goulet, J\'er\'emie Roulin, Nina Wiedemann

TL;DR
This paper introduces POCOVID-Net, a deep learning model trained on a new lung ultrasound dataset to automatically detect COVID-19, providing an accessible web tool to assist medical diagnosis globally.
Contribution
It presents a new open-access lung ultrasound dataset, a deep learning model for COVID-19 detection, and an online prediction service to aid clinical diagnosis.
Findings
Achieved 89% accuracy on the dataset
Model sensitivity of 0.96 for COVID-19 detection
Web service enables easy deployment and data contribution
Abstract
With the rapid development of COVID-19 into a global pandemic, there is an ever more urgent need for cheap, fast and reliable tools that can assist physicians in diagnosing COVID-19. Medical imaging such as CT can take a key role in complementing conventional diagnostic tools from molecular biology, and, using deep learning techniques, several automatic systems were demonstrated promising performances using CT or X-ray data. Here, we advocate a more prominent role of point-of-care ultrasound imaging to guide COVID-19 detection. Ultrasound is non-invasive and ubiquitous in medical facilities around the globe. Our contribution is threefold. First, we gather a lung ultrasound (POCUS) dataset consisting of 1103 images (654 COVID-19, 277 bacterial pneumonia and 172 healthy controls), sampled from 64 videos. This dataset was assembled from various online sources, processed specifically for…
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Taxonomy
TopicsUltrasound in Clinical Applications · COVID-19 diagnosis using AI · Lung Cancer Diagnosis and Treatment
