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An ε-dominance-based multiobjective genetic algorithm for economic emission load dispatch optimization problem

机译:经济排放负荷分配优化问题的基于ε-优势的多目标遗传算法

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In this paper, a novel multiobjective genetic algorithm approach for economic emission load dispatch (EELD) optimization problem is presented. The EELD problem is formulated as a non-linear constrained multiobjective optimization problem with both equality and inequality constraints. A new optimization algorithm which is based on concept of co-evolution and repair algorithm for handling non-linear constraints is presented. The algorithm maintains a finite-sized archive of non-dominated solutions which gets iteratively updated in the presence of new solutions based on the concept of e-dominance. The use of ε-dominance also makes the algorithms practical by allowing a decision maker to control the resolution of the Pareto-set approximation by choosing an appropriate s value.rnThe proposed approach is carried out on the standard IEEE 30-bus 6-genrator test system. The results demonstrate the capabilities of the proposed approach to generate true and well-distributed Pareto-optimal non-dominated solutions of the multiobjective EELD problem in one single run. Simulation results with the proposed approach have been compared to those reported in the literature. The comparison demonstrates the superiority of the proposed approach and confirms its potential to solve the multiobjective EELD problem.
机译:本文提出了一种新的多目标遗传算法,用于经济排放负荷分配(EELD)优化问题。 EELD问题被公式化为具有约束和不等式约束的非线性约束多目标优化问题。提出了一种基于协同进化和修复算法的非线性约束优化算法。该算法维护非控制解决方案的有限大小的存档,该存档在基于e-dominance概念的新解决方案存在时进行迭代更新。通过允许决策者通过选择适当的s值来控制Pareto集逼近的分辨率,使用ε优势也使算法实用。建议的方法在标准的IEEE 30总线6发生器测试上执行系统。结果证明了所提出方法在一次运行中生成多目标EELD问题的真实且分布均匀的帕累托最优非支配解的能力。拟议方法的仿真结果已与文献报道相比较。比较结果证明了该方法的优越性,并证实了其解决多目标EELD问题的潜力。

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