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  4. A binary machine learning cuckoo search algorithm improved by a local search operator for the set-union knapsack problem
 
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A binary machine learning cuckoo search algorithm improved by a local search operator for the set-union knapsack problem

ISSN
2227-7390
Date Issued
2021-10-16
DOI
10.3390/math9202611
Abstract
Optimization techniques, specially metaheuristics, are constantly refined in order to decrease execution times, increase the quality of solutions, and address larger target cases. Hybridizing techniques are one of these strategies that are particularly noteworthy due to the breadth of applications. In this article, a hybrid algorithm is proposed that integrates the k-means algorithm to generate a binary version of the cuckoo search technique, and this is strengthened by a local search operator. The binary cuckoo search algorithm is applied to the NP-hard Set-Union Knapsack Problem. This problem has recently attracted great attention from the operational research community due to the breadth of its applications and the difficulty it presents in solving medium and large instances. Numerical experiments were conducted to gain insight into the contribution of the final results of the k-means technique and the local search operator. Furthermore, a comparison to state-of-the-art algorithms is made. The results demonstrate that the hybrid algorithm consistently produces superior results in the majority of the analyzed medium instances, and its performance is competitive, but degrades in large instances.
Subjects

Cuckoo search

Operator (biology)

Binary search algorit...

Hill climbing

OCDE Subjects

Natural sciences::Mat...

Author(s)
Astorga, Gino  
Facultad de Ciencias Económicas y Administrativas  
José García
José Lemus-Romani
Francisco Altimiras
Broderick Crawford
Ricardo Soto
Marcelo Becerra
Paola Moraga
Álex Paz
Álvaro Peña
José-Miguel Rubio

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