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Chemical process dynamic optimization based on the differential evolution algorithm with an adaptive scheduling mutation strategy

机译:基于差分进化算法和自适应调度变异策略的化工过程动态优化

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摘要

To solve chemical process dynamic optimization problems, a differential evolution algorithm integrated with adaptive scheduling mutation strategy (ASDE) is proposed. According to the evolution feedback information, ASDE, with adaptive control parameters, adopts the round-robin scheduling algorithm to adaptively schedule different mutation strategies. By employing an adaptive mutation strategy and control parameters, the real-time optimal control parameters and mutation strategy are obtained to improve the optimization performance. The performance of ASDE is evaluated using a suite of 14 benchmark functions. The results demonstrate that ASDE performs better than four conventional differential evolution (DE) algorithm variants with different mutation strategies, and that the whole performance of ASDE is equivalent to a self-adaptive DE algorithm variant and better than five conventional DE algorithm variants. Furthermore, ASDE was applied to solve a typical dynamic optimization problem of a chemical process. The obtained results indicate that ASDE is a feasible and competitive optimizer for this kind of problem.
机译:针对化学过程动态优化问题,提出了一种与自适应调度变异策略(ASDE)相集成的差分进化算法。根据进化反馈信息,具有自适应控制参数的ASDE采用轮询调度算法自适应地调度不同的变异策略。通过采用自适应变异策略和控制参数,获得实时最优控制参数和变异策略,以提高优化性能。 ASDE的性能使用一套14个基准功能进行评估。结果表明,ASDE的性能优于具有不同变异策略的四个常规差分进化(DE)算法变体,并且ASDE的整体性能等效于自适应DE算法变体,并且优于五个常规DE算法变体。此外,ASDE还用于解决化学过程中典型的动态优化问题。获得的结果表明,ASDE是针对此类问题的可行且具有竞争力的优化器。

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