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An allocation-routing optimization model for integrated solid waste management

delete2023-10-01
delete27
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OA
AI
M
Mostafa Mohammadi
G
Golman Rahmanifar
M
Mostafa Hajiaghaei–Keshteli *
G
Gaetano Fusco
C
Chiara Colombaroni
DOI:10.1016/j.eswa.2023.120364delete
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摘要

摘要

En 中文
Integrated smart waste management (ISWM) is an innovative and technologically advanced approach to man-aging and collecting waste. It is based on the Internet of Things (IoT) technology, a network of interconnected devices that communicate and exchange data. The data collected from IoT devices helps municipalities to optimize their waste management operations. They can use the information to schedule waste collections more efficiently and plan their routes accordingly. In this study, we consider an ISWM framework for the collection, recycling, and recovery steps to improve the performance of the waste system. Since ISWM typically involves the collaboration of various stakeholders and is affected by different sources of uncertainty, a novel multi-objective model is proposed to maximize the probabilistic profit of the network while minimizing the total travel time and transportation costs. In the proposed model, the chance-constrained programming approach is applied to deal with the profit uncertainty gained from waste recycling and recovery activities. Furthermore, some of the most proficient multi-objective meta-heuristic algorithms are applied to address the complexity of the problem. For optimal adjustment of parameter values, the Taguchi parameter design method is utilized to improve the per-formance of the proposed optimization algorithm. Finally, the most reliable algorithm is determined based on the Best Worst Method (BWM).
Keyword:
Waste management system
Vehicle routing problem
Waste to energy
Best worst method
Meta -heuristic
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期刊

Expert Systems with Applications 封面图
Expert Systems with Applications
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7.5
论文数:
3.0W
被引数:
10.2W

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George Mason University
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Tecnologico de Monterrey
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sapienza university rome
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