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A Survey on Cooperative Co-Evolutionary Algorithms

机译:合作共同进化算法调查

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The first cooperative co-evolutionary algorithm (CCEA) was proposed by Potter and De Jong in 1994 and since then many CCEAs have been proposed and successfully applied to solving various complex optimization problems. In applying CCEAs, the complex optimization problem is decomposed into multiple subproblems, and each subproblem is solved with a separate subpopulation, evolved by an individual evolutionary algorithm (EA). Through cooperative co-evolution of multiple EA subpopulations, a complete problem solution is acquired by assembling the representative members from each subpopulation. The underlying divide-and-conquer and collaboration mechanisms enable CCEAs to tackle complex optimization problems efficiently, and hence CCEAs have been attracting wide attention in the EA community. This paper presents a comprehensive survey of these CCEAs, covering problem decomposition, collaborator selection, individual fitness evaluation, subproblem resource allocation, implementations, benchmark test problems, control parameters, theoretical analyses, and applications. The unsolved challenges and potential directions for their solutions are discussed.
机译:第一个合作共同进化算法(CCEA)由Potter和De Jong提出1994年,从那时起,已经提出了许多CCEAS,并成功地应用于解决各种复杂优化问题。在应用CCEAS中,复杂的优化问题被分解成多个子问题,并且每个子问题通过单独的亚群解决,通过单独的进化算法(EA)演变。通过多个EA亚群的合作共同进化,一个完整的问题的解决方案是通过从每个亚群组装代表成员获得的。底层划分和征服和协作机制使CCEA能够有效地解决复杂的优化问题,因此CCEAS在EA社区中引起了广泛的关注。本文提出了对这些CCEA的全面调查,涵盖问题分解,协作选择,个别健身评估,子问题资源分配,实现,基准测试问题,控制参数,理论分析和应用。他们的解决方案解决的挑战和潜在的方向进行了探讨。

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