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Multi-population cooperative teaching-learning-based optimization for nonlinear equation systems

delete2023-05-25
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OA
AI
Z
Zuowen Liao
S
Shuijia Li
龚
龚文引 (Wenyin Gong)
G
Gu Qiong *
DOI:10.1007/s40747-023-01074-8delete
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摘要

摘要

En 中文
Solving nonlinear equation systems (NESs) requires locating different roots in one run. To effectively deal with NESs, a multi-population cooperative teaching-learning-based optimization, named MCTLBO, is presented. The innovations of MCTLBO are as follows: (i) two niching technique (crowding and improved speciation) are integrated into the algorithm to enhance population diversity; (ii) an adaptive selection scheme is proposed to select the learning rules in the teaching phase; (iii) the new learning rules based on experience learning are developed to promote the search efficiency in the teaching and learning phases. MCTLBO was tested on 30 classical problems and the experimental results show that MCTLBO has better root finding performance than other algorithms. In addition, MCTLBO achieves competitive results in eighteen new test sets.
Keyword:
Nonlinear equation systems
multi-population cooperation
teaching-learning-based optimization
niching technique
adaptive selection scheme

期刊

Complex and Intelligent Systems 封面图
Complex and Intelligent Systems
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4.6
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被引数:
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hubei university of arts & science
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China University of Geosciences
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Beibu Gulf University
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