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A modified differential evolution based solution technique for economic dispatch problems

机译:一种改进的基于差分进化的经济调度问题求解技术

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摘要

Economic dispatch (ED) plays one of the major roles in power generation systems. The objective of economic dispatch problem is to find the optimal combination of power dispatches from different power generating units in a given time period to minimize the total generation cost while satisfying the specified constraints. Due to valve-point loading effects the objective function becomes nondifferentiable and has many local minima in the solution space. Traditional methods may fail to reach the global solution of ED problems. Most of the existing stochastic methods try to make the solution feasible or penalize an infeasible solution with penalty function method. However, to find the appropriate penalty parameter is not an easy task. Differential evolution is a population-based heuristic approach that has been shown to be very efficient to solve global optimization problems with simple bounds. In this paper, we propose a modified differential evolution based solution technique along with a tournament selection that makes pair-wise comparison among feasible and infeasible solutions based on the degree of constraint violation for economic dispatch problems. We reformulate the nonsmooth objective function to a smooth one and add nonlinear inequality constraints to original ED problems. We consider five ED problems and compare the obtained results with existing standard deterministic NLP solvers as well as with other stochastic techniques available in literature.
机译:经济调度(ED)在发电系统中扮演着主要角色之一。经济调度问题的目的是找到给定时间段内来自不同发电机组的电力调度的最佳组合,以在满足指定约束的同时使总发电成本最小化。由于阀点负载效应,目标函数变得不可微,并且在解空间中具有许多局部最小值。传统方法可能无法达到ED问题的整体解决方案。现有的大多数随机方法都试图用罚函数法使该解可行或对不可行的惩罚。但是,找到合适的惩罚参数并非易事。差异进化是一种基于种群的启发式方法,已证明在解决具有简单界限的全局优化问题方面非常有效。在本文中,我们提出了一种改进的基于差分进化的解决方案技术,以及一种基于对经济调度问题的约束违反程度进行可行与不可行解决方案成对比较的锦标赛选择。我们将非光滑目标函数重新构造为一个光滑的目标函数,并为原始的ED问题添加了非线性不等式约束。我们考虑了五个ED问题,并将获得的结果与现有的标准确定性NLP求解器以及文献中提供的其他随机技术进行比较。

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