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A dynamic granularity-based multi-objective evolutionary algorithm for coal mine integrated energy system dispatch optimization

delete2025-07-30
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PRE
AI
X
Xiaoyu Zhong
X
Xiangjuan Yao
K
Kangjia Qiao
巩敦卫 (Dunwei Gong)
DOI:10.1016/j.eswa.2025.129142delete
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Abstract

Abstract

En 中文
• A dynamic granularity search (DGS) approach is introduced to reduce the dimensionality of large-scale optimization problems. • A diversity-enhanced environmental selection (DES) strategy is designed to maintain both global and local diversity. • Integrating DGS and DES, a new large-scale constrained multi-objective evolutionary algorithm named DGMA is developed.
Keywords:
dynamic granularity search
diversity-enhanced environmental selection
large-scale optimization
multi-objective evolutionary algorithm
constrained optimization

Journal

Expert Systems with Applications cover
Expert Systems with Applications
IF:
7.5
Papers:
2.9W
Citations:
10.2W

Organization

Z
Zhengzhou University
Scholars:
6.8W
Papers: 4.4W
Citations: 8.5W
Q
qingdao university of science and technology
Scholars:
4.2K
Papers: 1.2K
Citations: 1
C
China University of Mining and Technology
Scholars:
8.6K
Papers: 3.1K
Citations: 3.1W
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