Applied Sciences (Apr 2021)

Search Patterns Based on Trajectories Extracted from the Response of Second-Order Systems

  • Erik Cuevas,
  • Héctor Becerra,
  • Héctor Escobar,
  • Alberto Luque-Chang,
  • Marco Pérez,
  • Heba F. Eid,
  • Mario Jiménez

DOI
https://doi.org/10.3390/app11083430
Journal volume & issue
Vol. 11, no. 8
p. 3430

Abstract

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Recently, several new metaheuristic schemes have been introduced in the literature. Although all these approaches consider very different phenomena as metaphors, the search patterns used to explore the search space are very similar. On the other hand, second-order systems are models that present different temporal behaviors depending on the value of their parameters. Such temporal behaviors can be conceived as search patterns with multiple behaviors and simple configurations. In this paper, a set of new search patterns are introduced to explore the search space efficiently. They emulate the response of a second-order system. The proposed set of search patterns have been integrated as a complete search strategy, called Second-Order Algorithm (SOA), to obtain the global solution of complex optimization problems. To analyze the performance of the proposed scheme, it has been compared in a set of representative optimization problems, including multimodal, unimodal, and hybrid benchmark formulations. Numerical results demonstrate that the proposed SOA method exhibits remarkable performance in terms of accuracy and high convergence rates.

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