作者
Rapeepan Pitakaso, Thanatkij Srichok, Surajet Khonjun, Paulina Golinska-Dawson, Sarayut Gonwirat, Natthapong Nanthasamroeng, Chawis Boonmee, Ganokgarn Jirasirilerd, Peerawat Luesak
发表日期
2024/6/30
来源
Waste Management
卷号
183
页码范围
87-100
出版商
Pergamon
简介
This research paper focuses on effective infectious municipal waste management in urban settings, highlighting a dearth of dedicated research in this domain. Unlike general or specific waste types, infectious waste poses distinct health and environmental risks. Leveraging advanced artificial intelligence techniques, we prioritize infectious waste categorization and optimization, integrating metaheuristics into optimization methods to create a robust dual-ensemble framework. Our model, the “Enhanced Artificial Intelligence for Infectious Municipal Waste Classification System,” combines ensemble image segmentation methods and diverse convolutional neural network models. Innovative geometric image augmentation enhances model robustness, diversifies training data, and improves accuracy across waste types. A pivotal aspect is the integration of a reinforcement learning-differential evolution algorithm as a …
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