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Self-adaptive DE algorithm without niching parameters for multi-modal optimization problems

delete2022-02-16
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PRE
AI
R
Ruizheng Jiang *
J
Jundong Zhang
Y
Yuanyuan Tang
J
Jinhong Feng
王川 cover
王川 (Chuan Wang)
DOI:10.1007/s10489-021-03003-zdelete
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Abstract

Abstract

En 中文
To solve multi-modal optimization problems, the niching technique is widely used because it could find and preserve multiple stable sub-populations. However, the performances of most existing evolutionary algorithms with niching techniques heavily depend on niching parameters, such as niche radius, sub-population size and crowding factor. To our best knowledge, a self-adaptive differential evolution (DE) variant without niching parameters using ring topology has not been developed. In this paper, we proposed a Self-adaptive Niching Differential Evolution (SaNDE) algorithm. The ring topology plays a crucial role in slowing the information flow, resulting in scattered niches with restricted and overlapped communications. We introduced local memory (personal best) into the DE algorithm to present a new mutation operator current-to-pnbest when a ring population topology was used. Moreover, the two control parameters in DE were self-adapted by using a simple but effective strategy that is based on successful parametric values in history. To improve the capability of jumping out of local optima, an adaptive re-start mechanism by using opposition-based learning was proposed to address the issue of stagnation. The performances of the proposed method were investigated through standard benchmark functions and the problem of optimizing parameters for a feedforward neural network. Comparisons with other state-of-the-art multi-modal optimization algorithms demonstrated the competitiveness of the proposed methodology.
Keywords:
Differential evolution (DE)
Niching
Multimodal optimization problem (MOP)
Population topology
Self-adaptive

Journal

Applied Intelligence cover
Applied Intelligence
IF:
3.5
Papers:
7.6K
Citations:
1.7W

Organization

D
Dalian Maritime University
Scholars:
1.2W
Papers: 7.9K
Citations: 6.3K
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