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Coevolutionary Genetic Algorithm Based on the Augmented Lagrangian Function for Solving the Economic Dispatch Problem

机译:基于增强拉格朗日函数的协同进化遗传算法求解经济调度问题

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This paper proposes a coevolutionary augmented Lagrangian method (AGCE) for solving the classic economic dispatch problem. This problem becomes non-convex and non-differentiable if valve-point loadings effects are considered in the cost curves of thermal units. In such cases, the evolutionary approaches have proven to be efficient for solving the primal economic dispatch problem; however, the great majority of these methods are not capable of solving the associated dual problem. Furthermore, the solutions obtained by these methods cannot be evaluated concerning their optimality. The AGCE works in the primal-dual subspaces and is able to calculate both primal and dual optimal values. For such a purpose, AGCE processes, in parallel, the evolution of two distinct groups of individuals, associated with primal and dual variables, respectively. The “clouds” of primal and dual points become iteratively denser, and converge to the saddle points associated with the problem, even in the presence of non-differentiability points. Therefore, AGCE makes possible the evaluation of optimality of its solution points. In the results, the AGCE is compared with a traditional interior point method and with a genetic algorithm that works only in the primal subspace.
机译:本文提出了一种求解经典经济调度问题的协进化增强拉格朗日方法(AGCE)。如果在热力单元的成本曲线中考虑阀点载荷的影响,则该问题变得非凸且不可微。在这种情况下,进化方法已被证明是解决原始经济调度问题的有效方法。然而,这些方法中的绝大多数不能解决相关的双重问题。此外,无法评估通过这些方法获得的解决方案的最佳性。 AGCE在原始对偶子空间中工作,并且能够计算原始和对偶最优值。为此目的,AGCE并行处理两组分别与原始变量和对偶变量相关联的个体的演变。原点和对偶点的“云”变得越来越密集,并且收敛到与问题相关的鞍点,即使存在不可微分点也是如此。因此,AGCE使评估其求解点的最佳性成为可能。结果,将AGCE与传统的内部点方法以及仅在原始子空间中起作用的遗传算法进行了比较。

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