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首页> 外文期刊>IEEE transactions on evolutionary computation >A simple multimembered evolution strategy to solve constrained optimization problems
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A simple multimembered evolution strategy to solve constrained optimization problems

机译:解决约束优化问题的简单多成员进化策略

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摘要

This work presents a simple multimembered evolution strategy to solve global nonlinear optimization problems. The approach does not require the use of a penalty function. Instead, it uses a simple diversity mechanism based on allowing infeasible solutions to remain in the population. This technique helps the algorithm to find the global optimum despite reaching reasonably fast the feasible region of the search space. A simple feasibility-based comparison mechanism is used to guide the process toward the feasible region of the search space. Also, the initial stepsize of the evolution strategy is reduced in order to perform a finer search and a combined (discrete/intermediate) panmictic recombination technique improves its exploitation capabilities. The approach was tested with a well-known benchmark. The results obtained are very competitive when comparing the proposed approach against other state-of-the art techniques and its computational cost (measured by the number of fitness function evaluations) is lower than the cost required by the other techniques compared.
机译:这项工作提出了一个简单的多成员进化策略,以解决全局非线性优化问题。该方法不需要使用惩罚函数。取而代之的是,它基于允许不可行的解决方案保留在总体中的简单多样性机制。尽管相当快地达到了搜索空间的可行区域,但该技术仍有助于算法找到全局最优值。一种简单的基于可行性的比较机制用于将过程导向搜索空间的可行区域。同样,为了进行更精细的搜索,减少了进化策略的初始步骤大小,并且组合的(离散/中间)泛函重组技术提高了其开发能力。该方法已通过著名的基准测试。当将所提出的方法与其他最新技术进行比较时,获得的结果非常具有竞争力,并且其计算成本(通过适应度函数评估的次数来衡量)低于其他比较技术所需的成本。

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