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Sizing, shape, and topology optimizations of roof trusses using hybrid genetic algorithms

机译:使用杂种遗传算法的屋顶桁架的尺寸,形状和拓扑优化

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Structural optimizations have received great attention from structural engineers. Several optimization methods have been proposed including evolutionary strategies and genetic algorithms. This paper considers hybrid genetic algorithms for roof truss optimizations. Practically, roof truss optimizations are unique. In this case, the pitch angles are usually governed by roof covering types. In the optimization process, the pitch angle is set to constant, while the coordinates of the joints are determined by genetic algorithms. The optimization process utilizes hybrid genetic algorithms, i.e., a combination of binary and real coded genetic algorithms. Genetic algorithms are optimization methods that have been used successfully for various problems. For the sizing, shape and topology optimizations considered in this paper, the area of cross section and the number of members connected to every node are optimized using binary coded genetic algorithms, while the coordinates of the nodes are determined using real coded genetic algorithms. The optimization process for binary and real coded algorithms is done subsequently. The use of real coding for joint coordinates of structures gives the program the flexibility to obtain the final position of the joints. The arithmetic crossover is used to tackle this matter. In every generation, a portion of new individuals is inserted randomly replacing the old individuals. This can be considered to increase the variability of the population. In addition, the fittest individual is always transferred into the next generation. The penalty to the individuals that are violating the constraint is set to a minimum fitness in this paper. It can be shown that the proposed procedure is able to obtain the optimum design of roof truss structures.
机译:结构优化从结构工程师获得了极大的关注。已经提出了几种优化方法,包括进化策略和遗传算法。本文考虑了屋顶桁架优化的混合遗传算法。实际上,屋顶桁架优化是独一无二的。在这种情况下,俯仰角通常由屋顶覆盖类型管辖。在优化过程中,俯仰角设定为常数,而关节的坐标由遗传算法确定。优化过程利用混合遗传算法,即二元和实际编码遗传算法的组合。遗传算法是已成功用于各种问题的优化方法。对于本文考虑的尺寸,形状和拓扑优化,使用二进制编码的遗传算法优化横截面区域和连接到每个节点的构件的数量,而使用真实编码的遗传算法确定节点的坐标。随后完成二进制和实际编码算法的优化过程。实际编码用于结构的关节坐标,使程序能够灵活地获得关节的最终位置。算术交叉用于解决这件事。在每一代,一部分新的个人被随机取代旧个人插入。这可以考虑增加人口的可变性。此外,最适合的个人总是转移到下一代。违反约束的个人的罚款被设定为本文的最低健康状况。可以证明,所提出的程序能够获得屋顶桁架结构的最佳设计。

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