Self-Adaptive Differential Evolution with Gauss Distribution for Optimal Mechanism Design

Author:

Nguyen Van-Tinh1ORCID,Tran Vu-Minh1ORCID,Bui Ngoc-Tam2ORCID

Affiliation:

1. School of Mechanical Engineering, Hanoi University of Science and Technology, Hanoi 10000, Vietnam

2. Department of Machinery and Control Systems, Shibaura Institute of Technology, Tokyo 135-8548, Japan

Abstract

Differential evolution (DE) is one of the best evolutionary algorithms (EAs). In recent decades, many techniques have been developed to enhance the performance of this algorithm, such as the Improve Self-Adaptive Differential Evolution (ISADE) algorithm. Based on the analysis of the aspects that may improve the performance of ISADE, we proposed a modified ISADE version with applying the Gauss distribution for mutation procedure. In ISADE, to determine the scaling factor (F), the population is ranked, then, based on the rank number, population size, and current generation, the formula of the Sigmoid function is used. In the proposed algorithm, F is amplified by a factor which is generated based on Gaussian distribution. It has the potential to enhance the variety of population. In comparison with several reference algorithms regarding converging speed and the consistency of optimal solutions, the simulation results reveal the performance of the suggested algorithm is exceptional.

Funder

Hanoi University of Science and Technology

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

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