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Multi-objective differential evolution algorithm for environmental-economic power dispatch problem

机译:解决环境经济动力调度问题的多目标差分进化算法

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This paper presents a multi-objective evolutionary algorithm for environmentaleconomic power dispatch (EEPD) problem. The multi-objective evolutionary algorithm based on differential evolution (MODE). In this algorithm, the differential evolution (DE) concept for the single objective optimization is extended to multi-objective optimization. The EEPD problem is formulated as a true nonlinear constrained multi-objective optimization problem with competing objectives. The proposed approach employs a diversity-preserving technique to overcome the premature convergence and search bias problems and produce a well-distributed Pareto-optimal set of non-dominated solutions. A hierarchical clustering algorithm is also imposed to provide the decision maker with a representative and manageable Pareto-optimal set. Moreover, fuzzy set theory is employed to extract the best compromise non-dominated solution. Several optimization runs of the proposed approach have been carried out on IEEE 30-bus test system. The results demonstrate the capabilities of the proposed approach to generate well-distributed Pareto-optimal solutions for the multi-objective EEPD problem and the comparison with the results reported in the literature demonstrates the superiority of the proposed approach and confirms its potential to solve the multi-objective EEPD problem.
机译:本文提出了一种解决环境经济动力调度(EEPD)问题的多目标进化算法。基于差分进化(MODE)的多目标进化算法。在该算法中,用于单目标优化的差分进化(DE)概念被扩展为多目标优化。 EEPD问题被公式化为具有竞争目标的真正非线性约束多目标优化问题。所提出的方法采用了一种保留多样性的技术来克服过早的收敛和搜索偏差问题,并产生了分布良好的帕累托最优非支配解集。还采用了层次聚类算法,以为决策者提供代表性且易于管理的帕累托最优集。此外,采用模糊集理论来提取最佳折衷非支配解。已在IEEE 30总线测试系统上对提出的方法进行了几次优化运行。结果证明了该方法具有针对多目标EEPD问题生成分布均匀的帕累托最优解的能力,并且与文献报道的结果进行比较证明了该方法的优越性,并证实了其解决多目标问题的潜力。客观EEPD问题。

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