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A Hybrid Approach to Find COVID-19 Related Lung Infection Utilizing 2-Bit Image Processing
International Conference on Innovative Computing and Communications, Icicc 2022, Vol 1 ; 473:119-127, 2023.
Artigo em Inglês | Web of Science | ID: covidwho-2094507
ABSTRACT
This study describes the deployment of an image processing approach for finding COVID-19 affected lungs. Medical scans are useful in diagnosing illnesses and determining if organs are working normally. Medical image processing is an ongoing research subject in where numerous ways are used to help diagnosis, as well as different image processing techniques that may be used. Picture processing was used in this work, which includes image pretreatment, histogram leveling, smothering, eroding, and dilation. The usage of 2-bit picture is selected since this characteristic is well-known and there are several resources accessible. The Open CV library, which includes a plethora of image processing functions, is likewise free to use. Our experiment has shown how COVID-19 affected lung disorders can easily be identified with the help of a 2-bit image segmentation technique. The plan comprises (1) using a deep robust acquisition access to portion proper regions of interest from bleak medical examination image sizes of 903 total, (2) using a propagative neural network to improve contrast, sharpness, and illuminance of image contents, and (3) from the beginning to the conclusion, a regression strategy plan was used to accomplish medical picture categorization by material design in deep neural networks.
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Texto completo: Disponível Coleções: Bases de dados de organismos internacionais Base de dados: Web of Science Idioma: Inglês Revista: International Conference on Innovative Computing and Communications, Icicc 2022, Vol 1 Ano de publicação: 2023 Tipo de documento: Artigo

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Texto completo: Disponível Coleções: Bases de dados de organismos internacionais Base de dados: Web of Science Idioma: Inglês Revista: International Conference on Innovative Computing and Communications, Icicc 2022, Vol 1 Ano de publicação: 2023 Tipo de documento: Artigo