A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems
The integration of machine learning techniques and metaheuristic algorithms is an area of interest due to the great potential for applications. In particular, using these hybrid techniques to solve combinatorial optimization problems (COPs) to improve the quality of the solutions and convergence tim...
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Series: | Computational Intelligence and Neuroscience |
Online Access: | http://dx.doi.org/10.1155/2019/3238574 |
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doaj-e05c9eec05e847618883736ce67a55cf2020-11-25T01:57:10ZengHindawi LimitedComputational Intelligence and Neuroscience1687-52651687-52732019-01-01201910.1155/2019/32385743238574A Db-Scan Binarization Algorithm Applied to Matrix Covering ProblemsJosé García0Paola Moraga1Matias Valenzuela2Broderick Crawford3Ricardo Soto4Hernan Pinto5Alvaro Peña6Francisco Altimiras7Gino Astorga8Pontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChilePontificia Universidad Católica de Valparíso, 2362807 Valparaíso, ChileUniversidad de Valparaíso, 2361864 Valparaíso, ChileThe integration of machine learning techniques and metaheuristic algorithms is an area of interest due to the great potential for applications. In particular, using these hybrid techniques to solve combinatorial optimization problems (COPs) to improve the quality of the solutions and convergence times is of great interest in operations research. In this article, the db-scan unsupervised learning technique is explored with the goal of using it in the binarization process of continuous swarm intelligence metaheuristic algorithms. The contribution of the db-scan operator to the binarization process is analyzed systematically through the design of random operators. Additionally, the behavior of this algorithm is studied and compared with other binarization methods based on clusters and transfer functions (TFs). To verify the results, the well-known set covering problem is addressed, and a real-world problem is solved. The results show that the integration of the db-scan technique produces consistently better results in terms of computation time and quality of the solutions when compared with TFs and random operators. Furthermore, when it is compared with other clustering techniques, we see that it achieves significantly improved convergence times.http://dx.doi.org/10.1155/2019/3238574 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
José García Paola Moraga Matias Valenzuela Broderick Crawford Ricardo Soto Hernan Pinto Alvaro Peña Francisco Altimiras Gino Astorga |
spellingShingle |
José García Paola Moraga Matias Valenzuela Broderick Crawford Ricardo Soto Hernan Pinto Alvaro Peña Francisco Altimiras Gino Astorga A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems Computational Intelligence and Neuroscience |
author_facet |
José García Paola Moraga Matias Valenzuela Broderick Crawford Ricardo Soto Hernan Pinto Alvaro Peña Francisco Altimiras Gino Astorga |
author_sort |
José García |
title |
A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems |
title_short |
A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems |
title_full |
A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems |
title_fullStr |
A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems |
title_full_unstemmed |
A Db-Scan Binarization Algorithm Applied to Matrix Covering Problems |
title_sort |
db-scan binarization algorithm applied to matrix covering problems |
publisher |
Hindawi Limited |
series |
Computational Intelligence and Neuroscience |
issn |
1687-5265 1687-5273 |
publishDate |
2019-01-01 |
description |
The integration of machine learning techniques and metaheuristic algorithms is an area of interest due to the great potential for applications. In particular, using these hybrid techniques to solve combinatorial optimization problems (COPs) to improve the quality of the solutions and convergence times is of great interest in operations research. In this article, the db-scan unsupervised learning technique is explored with the goal of using it in the binarization process of continuous swarm intelligence metaheuristic algorithms. The contribution of the db-scan operator to the binarization process is analyzed systematically through the design of random operators. Additionally, the behavior of this algorithm is studied and compared with other binarization methods based on clusters and transfer functions (TFs). To verify the results, the well-known set covering problem is addressed, and a real-world problem is solved. The results show that the integration of the db-scan technique produces consistently better results in terms of computation time and quality of the solutions when compared with TFs and random operators. Furthermore, when it is compared with other clustering techniques, we see that it achieves significantly improved convergence times. |
url |
http://dx.doi.org/10.1155/2019/3238574 |
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