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An Improved Adaptive Shuffled Frog Leaping Algorithm to solve various non-smooth Economic Dispatch problems in power systems

机译:一种改进的自适应改组蛙跳算法,用于解决电力系统中各种不平稳的经济调度问题

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This paper presents an Improved Adaptive Shuffled Frog Leaping Algorithm (IASFLA) applied to solve practical Economic Dispatch (ED) problem that is known as a highly constrained non-linear optimization problem with nonconvex space. In this paper, a new adaptive frog leaping rule is suggested to enhance the local exploration and performance of the SFLA. Furthermore, to improve the performance and quicker algorithm convergence, the genetic mutation operator is employed for new frog generation instead of random frog generation. To show the efficiency of the proposed IASFLA in solving ED problem, it is applied to four test systems having nonsmooth and non-convex solution spaces. In order to validate the obtained results by proposed IASFLA, an ordinary SFLA and a modified SFLA (MSFLA) are adopted from the literature and applied for comparison. Also, the results obtained by the SFL algorithms are compared with the recently previous methods reported in the literature. Simulation studies show the superiority and advantages of the proposed IASFLA over the other methods.
机译:本文提出了一种改进的自适应改组蛙跳算法(IASFLA),用于解决实际的经济调度(ED)问题,该问题被称为具有非凸空间的高度约束非线性优化问题。本文提出了一种新的自适应蛙跳规则,以增强SFLA的局部探索和性能。此外,为了提高性能和更快的算法收敛性,将遗传突变算子用于新的蛙代而不是随机蛙代。为了显示所提出的IASFLA解决ED问题的效率,将其应用于具有非光滑和非凸解空间的四个测试系统。为了验证所提出的IASFLA所获得的结果,从文献中采用了普通SFLA和改进的SFLA(MSFLA)并进行了比较。此外,将SFL算法获得的结果与文献中报道的最新方法进行了比较。仿真研究表明,所提出的IASFLA优于其他方法。

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