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PSO embedded evolutionary programming technique for nonconvex economic load dispatch

机译:PSO嵌入式进化规划技术,用于非渗透经济负载调度

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This paper proposes a hybrid method that integrates the main features of particle swarm optimization (PSO) and evolutionary programming (EP) for solution of nonconvex economic load dispatch (ELD) problems having nonlinearities like valve point loadings. Algorithms based on PSO, Evolutionary programming (EP) and PSO embedded EP techniques have been developed and tested on a practical nonconvex ELD problem with valve point loading effects considered in the cost functions. Numerical results show that all the algorithms are capable of finding feasible near global solutions within a reasonable time but PSO embedded EP-algorithm with Gaussian mutation appears to outperform the other two in terms of convergence speed, solution time and quality of solution.
机译:本文提出了一种混合方法,其集成了粒子群优化(PSO)和进化编程(EP)的主要特征,以解决具有阀点载荷等非线性的非线性的经济负担调度(ELD)问题的解决方案。基于PSO,进化编程(EP)和PSO嵌入式EP技术的算法已经开发和测试,并在具有成本函数中考虑的阀点加载效果的实用非凸晶果问题上进行了开发和测试。数值结果表明,所有算法都能够在合理的时间内找到可行的全局解决方案,但PSO嵌入EP算法具有高斯突变的eP算法似乎在收敛速度,解决方案时间和解决方案质量方面越优越。

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