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Image-based classification and segmentation of healthy and defective mangoes

Producción científica: Capítulo del libroContribución a congreso/conferenciarevisión exhaustiva

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Resumen

The use of image processing and classification for agricultural applications has been widely studied and has led to work such as the automatic grading of fruit and vegetables, yield approximation and defect detection. Image segmentation is one of the first steps to identify the region of interest within an image. This paper presents an approach to automatic segmentation and classification of healthy and defective Carabao mangoes. K-means, range filtering and color-channel segmentation were utilized so that the varying texture and color of mangoes due to the surface defects can be considered. Results show that the proposed technique performs better than the classical K-means segmentation. The performance of segmentation step has a considerable influence on the precision of the classification model. Segmented and not segmented images were trained using KNN, SVM, MLP and CNN. The experiments showed that the models performed better when trained with segmented images.

Idioma originalInglés
Título de la publicación alojadaEleventh International Conference on Machine Vision, ICMV 2018
EditoresAntanas Verikas, Dmitry P. Nikolaev, Jianhong Zhou, Petia Radeva
EditorialSPIE
ISBN (versión digital)9781510627482
DOI
EstadoPublicada - 2019
Publicado de forma externa
Evento11th International Conference on Machine Vision, ICMV 2018 - Munich, Alemania
Duración: 1 nov 20183 nov 2018

Serie de la publicación

NombreProceedings of SPIE - The International Society for Optical Engineering
Volumen11041
ISSN (versión impresa)0277-786X
ISSN (versión digital)1996-756X

Conferencia

Conferencia11th International Conference on Machine Vision, ICMV 2018
País/TerritorioAlemania
CiudadMunich
Período1/11/183/11/18

Huella

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