4.7 Article

Chaotic Local Search-Based Differential Evolution Algorithms for Optimization

Journal

IEEE TRANSACTIONS ON SYSTEMS MAN CYBERNETICS-SYSTEMS
Volume 51, Issue 6, Pages 3954-3967

Publisher

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TSMC.2019.2956121

Keywords

Optimization; Chaos; Convergence; Sociology; Statistics; Logistics; Search problems; Chaotic local search (CLS); chaotic map; differential evolution (DE); incorporation scheme; optimization algorithm

Funding

  1. National Natural Science Foundation of China [61673403, 61872271]
  2. Japan Society for the Promotion of Science KAKENHI [JP17K12751]

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The article introduces a novel variant of the JADE algorithm that improves its performance by incorporating chaotic local search mechanisms. Experimental and statistical analyses demonstrate the superior performance of this variant compared to traditional JADE and other state-of-the-art optimization algorithms.
JADE is a differential evolution (DE) algorithm and has been shown to be very competitive in comparison with other evolutionary optimization algorithms. However, it suffers from the premature convergence problem and is easily trapped into local optima. This article presents a novel JADE variant by incorporating chaotic local search (CLS) mechanisms into JADE to alleviate this problem. Taking advantages of the ergodicity and nonrepetitious nature of chaos, it can diversify the population and thus has a chance to explore a huge search space. Because of the inherent local exploitation ability, its embedded CLS can exploit a small region to refine solutions obtained by JADE. Hence, it can well balance the exploration and exploitation in a search process and further improve its performance. Four kinds of its CLS incorporation schemes are studied. Multiple chaotic maps are individually, randomly, parallelly, and memory-selectively incorporated into CLS. Experimental and statistical analyses are performed on a set of 53 benchmark functions and four real-world optimization problems. Results show that it has a superior performance in comparison with JADE and some other state-of-the-art optimization algorithms.

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