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Choice function based hyper-heuristics for multi-objective optimization
Affiliation:1. Institute of Artificial Intelligence, School of Computer Science and Informatics, De Montfort University, Leicester, United Kingdom;2. Data Science Institute, Department of Management Science, Lancaster University Management School, Lancaster University, Lancaster, United Kingdom;1. Laboratório Associado de Computação e Matemática Aplicada (LABAC), Instituto Nacional de Pesquisas Espaciais (INPE), Av. dos Astronautas 1758, São José dos Campos, SP, 12227-010, Brazil;2. School of Computer Science - Jubilee Campus, The University of Nottingham, Wollaton Road, Nottingham, NG8 1BB, United Kingdom
Abstract:A selection hyper-heuristic is a high level search methodology which operates over a fixed set of low level heuristics. During the iterative search process, a heuristic is selected and applied to a candidate solution in hand, producing a new solution which is then accepted or rejected at each step. Selection hyper-heuristics have been increasingly, and successfully, applied to single-objective optimization problems, while work on multi-objective selection hyper-heuristics is limited. This work presents one of the initial studies on selection hyper-heuristics combining a choice function heuristic selection methodology with great deluge and late acceptance as non-deterministic move acceptance methods for multi-objective optimization. A well-known hypervolume metric is integrated into the move acceptance methods to enable the approaches to deal with multi-objective problems. The performance of the proposed hyper-heuristics is investigated on the Walking Fish Group test suite which is a common benchmark for multi-objective optimization. Additionally, they are applied to the vehicle crashworthiness design problem as a real-world multi-objective problem. The experimental results demonstrate the effectiveness of the non-deterministic move acceptance, particularly great deluge when used as a component of a choice function based selection hyper-heuristic.
Keywords:Hyper-heuristic  Metaheuristic  Great deluge  Late acceptance  Multi-objective optimization
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