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基于混沌模拟退火神经网络模型的电力系统经济负荷分配
引用本文:毛亚林,张国忠,朱斌,周明. 基于混沌模拟退火神经网络模型的电力系统经济负荷分配[J]. 中国电机工程学报, 2005, 25(3): 0-70
作者姓名:毛亚林  张国忠  朱斌  周明
作者单位:武汉大学自动化系,湖北省,武汉市,430072
摘    要:在传统混沌神经网络模型的基础上,提出了一种具有衰减混沌噪声的混沌模拟退火神经网络模型(CSA-DCN)。该模型结合了Hopfield神经网络(HNN)与模拟退火算法(SA)的优点,并引入通过Logistic映射迭代函数产生的衰减混沌噪声,从而使该模型可以有效地解决高维、离散、非凸的非线性约束优化问题。例如电力系统经济负荷分配(ELD)问题,在考虑网损、阀点效应的情况下,将该模型应用于解决ELD问题。通过多个算例仿真计算表明,该模型的算法是可行和有效的。CSA-DCN模型是一种适用性很强的优化模型,可以应用于电力系统或其它行业系统的优化问题中。

关 键 词:ELD 模拟退火 Hopfield神经网络 高维 混沌神经网络 神经网络模型 Logistic映射 电力系统 负荷分配 网损
文章编号:0258-8013(2005)03-0065-06
收稿时间:2004-03-17
修稿时间:2004-10-20

ECONOMIC LOAD DISPATCH OF POWER SYSTEMS BASED ON CHAOTIC SIMULATED ANNEALING NEURAL NETWORK MODEL
MAO Ya-lin,ZHANG Guo-zhong,ZHU Bin,ZHOU Ming. ECONOMIC LOAD DISPATCH OF POWER SYSTEMS BASED ON CHAOTIC SIMULATED ANNEALING NEURAL NETWORK MODEL[J]. Proceedings of the CSEE, 2005, 25(3): 0-70
Authors:MAO Ya-lin  ZHANG Guo-zhong  ZHU Bin  ZHOU Ming
Abstract:Based on deeply discussing the principle of chaotic neural network model, the chaotic simulated annealing model with decaying chaotic noise (CSA-DCN) is presented. This model combines some advantages of Hopfield neural network (HNN) and simulated annealing (SA) algorithm, and decaying chaotic noise produced by iterated functions of Logistic map is inducted into this model, which makes it be used to solve many multidimensioned, discrete, non-convex, nonlinear constrained optimization problems, such as economic load dispatch (ELD) of power systems. Involved the transmission loss and valve point effect (VPE), the CSA-DCN model is applied to solve the ELD problem, simulation results of three examples show that the CSA-DCN model for the ELD problem is versatile, robust and efficient.
Keywords:Electric power engineering  Power system  Economic load dispatch  Chaotic simulated annealing neural network model  Hopfield neural network  Decaying chaotic noise
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