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dc.contributor.authorSaiz, Fátima
dc.contributor.authorBarandiaran, Iñigo
dc.date2020-06
dc.date.accessioned2022-03-29T11:32:54Z
dc.date.available2022-03-29T11:32:54Z
dc.identifier.issn1989-1660
dc.identifier.urihttps://reunir.unir.net/handle/123456789/12749
dc.description.abstractThe Corona Virus Disease (COVID-19) is an infectious disease caused by a new virus that has not been detected in humans before. The virus causes a respiratory illness like the flu with various symptoms such as cough or fever that, in severe cases, may cause pneumonia. The COVID-19 spreads so quickly between people, affecting to 1,200,000 people worldwide at the time of writing this paper (April 2020). Due to the number of contagious and deaths are continually growing day by day, the aim of this study is to develop a quick method to detect COVID-19 in chest X-ray images using deep learning techniques. For this purpose, an object detection architecture is proposed, trained and tested with a public available dataset composed with 1500 images of non-infected patients and infected with COVID-19 and pneumonia. The main goal of our method is to classify the patient status either negative or positive COVID-19 case. In our experiments using SDD300 model we achieve a 94.92% of sensibility and 92.00% of specificity in COVID-19 detection, demonstrating the usefulness application of deep learning models to classify COVID-19 in X-ray images.es_ES
dc.language.isoenges_ES
dc.publisherInternational Journal of Interactive Multimedia and Artificial Intelligence (IJIMAI)es_ES
dc.relation.ispartofseries;vol. 6, nº 2
dc.relation.urihttps://www.ijimai.org/journal/bibcite/reference/2763es_ES
dc.rightsopenAccesses_ES
dc.subjectdeep learninges_ES
dc.subjectcoronavirus COVID-19es_ES
dc.subjectobject detectiones_ES
dc.subjectX-rayes_ES
dc.subjectconvolutional neural network (CNN)es_ES
dc.subjectIJIMAIes_ES
dc.titleCOVID-19 Detection in Chest X-ray Images using a Deep Learning Approaches_ES
dc.typearticlees_ES
reunir.tag~IJIMAIes_ES
dc.identifier.doihttps://doi.org/10.9781/ijimai.2020.04.003


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