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Combinatorial Optimization Problems and Metaheuristics: Review, Challenges, Design, and Development

Fernando Peres, Mauro Castelli

2021Englishcombinatorial optimizationmetaheuristicsstandardizationframeworksalgorithm designproblem solving

Abstract

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In the past few decades, metaheuristics have demonstrated their suitability in addressing complex problems over different domains. This success drives the scientific community towards the definition of new and better-performing heuristics and results in an increased interest in this research field. Nevertheless, new studies have been focused on developing new algorithms without providing consolidation of the existing knowledge. Furthermore, the absence of rigor and formalism to classify, design, and develop combinatorial optimization problems and metaheuristics represents a challenge to the field’s progress. This study discusses the main concepts and challenges in this area and proposes a formalism to classify, design, and code combinatorial optimization problems and metaheuristics. We believe these contributions may support the progress of the field and increase the maturity of metaheuristics as problem solvers analogous to other machine learning algorithms.

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Cite This Work

@article{dc224245-0dee-4687-8361-e1e44a700f66,
  title={Combinatorial Optimization Problems and Metaheuristics: Review, Challenges, Design, and Development},
  author={Fernando Peres and Mauro Castelli},
  year={2021},
  language={English}
}
TY  - JOUR
TI  - Combinatorial Optimization Problems and Metaheuristics: Review, Challenges, Design, and Development
AU  - Fernando Peres
AU  - Mauro Castelli
PY  - 2021
LA  - English
ER  -

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