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An entropy-based multi-population genetic algorithm: I. The basic principles

机译:基于熵的多种群遗传算法:I.基本原理

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摘要

An improved genetic algorithm based on information entropy is presented in this paper. As a new iteration scheme in conjunction with multi-population genetic strategy, entropy-based searching technique with narrowing down space and the quasi-exact penalty function is developed to solve nonlinear programming (NLP) problems with equality and inequality constraints. A specific strategy of reserving the fittest member with evolutionary historic information is effectively used to approximate the solution of the nonlinear programming problems to the global optimization. Numerical examples show that the proposed method has good accuracy and efficiency.
机译:提出了一种基于信息熵的改进遗传算法。作为结合多种群遗传策略的一种新的迭代方案,开发了一种具有缩小空间和准精确罚函数的基于熵的搜索技术,以解决具有相等和不等式约束的非线性规划(NLP)问题。保留具有进化历史信息的最适成员的一种特定策略,可以有效地用于近似非线性规划问题对全局优化的求解。数值算例表明,该方法具有良好的精度和效率。

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