EspEn graph for the spatial analysis of entropy in images
Resumen: The quantification of entropy in images is a topic of interest that has had different applications in the field of agronomy, product generation and medicine. Some algorithms have been proposed for the quantification of the irregularity present in an image; however, the challenges to overcome in the computational cost involved in large images and the reliable measurements in small images are still topics of discussion. In this research we propose an algorithm, EspEn Graph, which allows the quantification and graphic representation of the irregularity present in an image, revealing the location of the places where there are more or less irregular textures in the image. EspEn is used to calculate entropy because it presents reliable and stable measurements for small size images. This allows an image to be subdivided into small sections to calculate the entropy in each section and subsequently perform the conversion of values to graphically show the regularity present in an image. In conclusion, the EspEn Graph returns information on the spatial regularity that an image with different textures has and the average of these entropy values allows a reliable measure of the general entropy of the image.
Idioma: Inglés
DOI: 10.3390/e25010159
Año: 2023
Publicado en: ENTROPY 25, 1 (2023), 159 [10 pp]
ISSN: 1099-4300

Factor impacto JCR: 2.1 (2023)
Categ. JCR: PHYSICS, MULTIDISCIPLINARY rank: 44 / 112 = 0.393 (2023) - Q2 - T2
Factor impacto CITESCORE: 4.9 - Physics and Astronomy (miscellaneous) (Q1) - Mathematical Physics (Q1) - Electrical and Electronic Engineering (Q2) - Information Systems (Q2)

Factor impacto SCIMAGO: 0.541 - Electrical and Electronic Engineering (Q2) - Physics and Astronomy (miscellaneous) (Q2) - Mathematical Physics (Q2) - Information Systems (Q2)

Tipo y forma: Artículo (Versión definitiva)

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