DOI: 10.3390/electronics14020358 ISSN: 2079-9292

Innovative Machine Learning and Image Processing Methodology for Enhanced Detection of Aleurothrixus Floccosus

Manuel Alejandro Valderrama Solis, Javier Valenzuela Nina, German Alberto Echaiz Espinoza, Daniel Domingo Yanyachi Aco Cardenas, Juan Moises Mauricio Villanueva, Andrés Ortiz Salazar, Elmer Rolando Llanos Villarreal

This paper presents a methodology for detecting the pest Aleurothrixus floccosus in citrus crops in Pedregal de Arequipa, Peru. The study employs simple random sampling during image collection to minimize bias, alternating and extracting leaves from different citrus trees. Image processing techniques, including noise reduction, edge smoothing, and segmentation, are applied for pest detection. Machine learning algorithms are used to classify the images, culminating in a robust detection methodology. A dataset of 1200 images was analyzed during the study.

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