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基于协同进化法的电力系统无功优化 被引量:76
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作者 王建学 王锡凡 +1 位作者 陈皓勇 王秀丽 《中国电机工程学报》 EI CSCD 北大核心 2004年第9期124-129,共6页
针对无功优化问题非线性、非连续性等特点以及大范围内无功优化控制变量较多的问题,提出基于协同进化的无功优化算法以及相应的求解步骤。协同进化算法借鉴分解协调的思想,将无功优化问题分解为一系列相互联系的子优化问题,每个子优化... 针对无功优化问题非线性、非连续性等特点以及大范围内无功优化控制变量较多的问题,提出基于协同进化的无功优化算法以及相应的求解步骤。协同进化算法借鉴分解协调的思想,将无功优化问题分解为一系列相互联系的子优化问题,每个子优化问题对应于进化算法的一个种群,各种群通过共同的系统模型相互作用,共同进化,从而使整个系统不断演进,最终达到问题求解的目的。与常规的遗传算法相比,协同进化算法小但能得到更好的优化 结果,收敛性好,而且克服了普通遗传算法计算时间过长的缺点,算例结果表明,该算法更适合于求解大系统的无功优化问题。 展开更多
关键词 电力系统 遗传算 协同进化法 无功优化
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Three-dimensional multi-constraint route planning of unmanned aerial vehicle low-altitude penetration based on coevolutionary multi-agent genetic algorithm 被引量:8
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作者 彭志红 吴金平 陈杰 《Journal of Central South University》 SCIE EI CAS 2011年第5期1502-1508,共7页
To address the issue of premature convergence and slow convergence rate in three-dimensional (3D) route planning of unmanned aerial vehicle (UAV) low-altitude penetration,a novel route planning method was proposed.Fir... To address the issue of premature convergence and slow convergence rate in three-dimensional (3D) route planning of unmanned aerial vehicle (UAV) low-altitude penetration,a novel route planning method was proposed.First and foremost,a coevolutionary multi-agent genetic algorithm (CE-MAGA) was formed by introducing coevolutionary mechanism to multi-agent genetic algorithm (MAGA),an efficient global optimization algorithm.A dynamic route representation form was also adopted to improve the flight route accuracy.Moreover,an efficient constraint handling method was used to simplify the treatment of multi-constraint and reduce the time-cost of planning computation.Simulation and corresponding analysis show that the planning results of CE-MAGA have better performance on terrain following,terrain avoidance,threat avoidance (TF/TA2) and lower route costs than other existing algorithms.In addition,feasible flight routes can be acquired within 2 s,and the convergence rate of the whole evolutionary process is very fast. 展开更多
关键词 unmanned aerial vehicle (UAV) low-altitude penetration three-dimensional (3D) route planning coevolutionary multiagent genetic algorithm (CE-MAGA)
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Gaussian process assisted coevolutionary estimation of distribution algorithm for computationally expensive problems 被引量:2
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作者 罗娜 钱锋 +1 位作者 赵亮 钟伟民 《Journal of Central South University》 SCIE EI CAS 2012年第2期443-452,共10页
In order to reduce the computation of complex problems, a new surrogate-assisted estimation of distribution algorithm with Gaussian process was proposed. Coevolution was used in dual populations which evolved in paral... In order to reduce the computation of complex problems, a new surrogate-assisted estimation of distribution algorithm with Gaussian process was proposed. Coevolution was used in dual populations which evolved in parallel. The search space was projected into multiple subspaces and searched by sub-populations. Also, the whole space was exploited by the other population which exchanges information with the sub-populations. In order to make the evolutionary course efficient, multivariate Gaussian model and Gaussian mixture model were used in both populations separately to estimate the distribution of individuals and reproduce new generations. For the surrogate model, Gaussian process was combined with the algorithm which predicted variance of the predictions. The results on six benchmark functions show that the new algorithm performs better than other surrogate-model based algorithms and the computation complexity is only 10% of the original estimation of distribution algorithm. 展开更多
关键词 estimation of distribution algorithm fitness function modeling Gaussian process surrogate approach
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