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Improved genetic algorithm for design optimization of truss structures with sizing, shape and topology variables

机译:具有尺寸,形状和拓扑变量的桁架结构设计优化的改进遗传算法

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This paper presents an improved genetic algorithm (GA) to minimize weight of truss with sizing, shape and topology variables. Because of the nature of discrete and continuous variables, mixed coding schemes are proposed, including binary and float coding, integer and float coding. Surrogate function is applied to unify the constraints into single one; moreover Surrogate reproduction is developed to select good individuals to mating pool oil the basis of constraint and fitness values, which completely considers the character of constrained optimization. This paper proposes a new strategy of creating next Population by competing between parent and offspring Population based on constraint and fitness values: so that lifetime of excellent gene is prolonged. Because the initial population is created randomly and three operators of GA are also indeterminable, it is necessary to check whether the structural topology is desirable. An improved restart operator is proposed to introduce new gene and explore new space. so that the reliability of GA is enhanced. Selected examples are solved; the improved numerical results demonstrate that the enhanced GA scheme is feasible and effective. Copyright (c) 2005 John Wiley T Sons, Ltd.
机译:本文提出了一种改进的遗传算法(GA),以最小化具有尺寸,形状和拓扑变量的桁架的重量。由于离散变量和连续变量的性质,提出了混合编码方案,包括二进制和浮点编码,整数和浮点编码。代理功能用于将约束统一为一个约束;此外,还开发了替代繁殖,以选择约束个体和适应度值的基础来匹配池油的优秀个体,这完全考虑了约束优化的特征。本文提出了一种新的策略,即基于约束和适应度值,通过在父母与后代种群之间进行竞争来创建下一个种群:这样可以延长优良基因的寿命。由于初始种群是随机产生的,并且GA的三个算子也是不确定的,因此有必要检查结构拓扑是否令人满意。提出了一种改进的重启算子,以引入新的基因并探索新的空间。从而提高了遗传算法的可靠性。选定的例子得到解决;改进的数值结果表明,改进的遗传算法是可行和有效的。版权所有(c)2005 John Wiley T Sons,Ltd.

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