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An improved real-coded genetic algorithm with random walk based mutation for solving combined heat and power economic dispatch

机译:一种改进的实际编码遗传算法,随机步行基于求解综合热电经济调度

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摘要

Combined heat and power economic dispatch (CHPED) is an energy management problem that minimizes the operation cost of power and heat generation while a vast variety of operational constraints of the system should be met. The CHPED is a complicated, non-convex and non-linear problem. In this study, a new real-coded genetic algorithm with random walk-based mutation (RCGA-CRWM) is under study, which is effective in solving large-scale CHPED problem with minimum operation cost. In the presented optimization method, a simple approach is introduced to combine the positive features of different probabilistic distributions for the step size of random walk. Using the presented approach, while the genetic algorithm is speeded up, the premature convergence is also avoided. After verifying the performance of the presented method on the benchmark functions, two large-scale and two medium-scale case studies are used for determining the algorithm strength in solving the CHPED problem. Despite the fact that the complexity of the CHPED rises dramatically by increasing its dimensionality, the algorithm has solved the problems accurately. The application of RCGA-CRWM method improves the results of the CHPED problem in terms of both operation cost and convergence speed in comparison with other optimization methods.
机译:综合热量和电力经济调度(CHPED)是一种能源管理问题,最大限度地减少了电力和发热的运营成本,而应该满足系统的各种操作系统。 CHPED是一个复杂,非凸出和非线性问题。在该研究中,采用了一种新的实际编码的遗传算法,具有随机行走的突变(RCGA-CRWM)进行了研究,这对于以最小运营成本解决大规模的CHPED问题是有效的。在呈现的优化方法中,引入了一种简单的方法,以将不同概率分布的正征与随机散步的阶梯尺寸组合。使用所提出的方法,虽然遗传算法加速,但还避免了过早的收敛性。在验证基准函数上提出的方法的性能之后,两种大规模和两个中尺度案例研究用于确定求解CHPED问题的算法强度。尽管通过提高其维度,CHPED的复杂性急剧上升,但该算法已经准确解决了问题。与其他优化方法相比,RCGA-CRWM方法的应用提高了操作成本和收敛速度的酸性问题。

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