YOLOv8-Based Model for Solid Waste Detection

Descripción del Articulo

The primary focus of this article was to employ Ultralytics technology, specifically YOLOv8, in object recognition. This involved utilizing supervised learning and other machine learning techniques. The article took into consideration the definitions of object detection and model training to effecti...

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Detalles Bibliográficos
Autores: Guevara Saldaña, Rodrigo Alonso, Díaz Tomás, Marcos Iván, Torres Villanueva, Marcelino
Formato: artículo
Fecha de Publicación:2024
Institución:Universidad La Salle
Repositorio:Revistas - Universidad La Salle
Lenguaje:español
OAI Identifier:oai:ojs.revistas.ulasalle.edu.pe:article/160
Enlace del recurso:https://revistas.ulasalle.edu.pe/innosoft/article/view/160
https://doi.org/10.48168/innosoft.s16.a160
https://purl.org/42411/s16/a160
https://n2t.net/ark:/42411/s16/a160
Nivel de acceso:acceso abierto
Materia:Detection
Deep Learning
Solid Waste
YOLO
Detección
Aprendizaje Profundo
Residuos Sólidos
Descripción
Sumario:The primary focus of this article was to employ Ultralytics technology, specifically YOLOv8, in object recognition. This involved utilizing supervised learning and other machine learning techniques. The article took into consideration the definitions of object detection and model training to effectively categorize solid waste, thereby facilitating recycling efforts. Following this, each object class was manually identified using the LabelImg tagger, considering the positions of the objects within the images. This approach led to the analysis of 1517 images and produced notably high-quality and significant results.
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