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Optimal Design of Transmission Towers Using Genetic Algorithm and Neural Networks

机译:基于遗传算法和神经网络的输电塔优化设计

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摘要

In the context of transmission tower optimization, the energy method and the force method are combined in order to form a holistic design and optimization approach, eliminating the need for time-intensive matrix inversion. A migration genetic algorithm is employed in the optimization process. Although this algorithm is suitable for towers with a limited number of elements, it is inefficient in the case of many towers encountered in practice. The addition of a neural network as an analysis tool reduces the overall computational load. Four examples are presented to demonstrate the important role of neural networks in reducing the computational overhead.
机译:在输电塔优化的背景下,将能量法和力法结合起来以形成整体设计和优化方法,从而无需进行耗时的矩阵求逆。在优化过程中采用了迁移遗传算法。尽管此算法适用于元素数量有限的塔,但在实践中遇到许多塔的情况下效率低下。添加神经网络作为分析工具可以减少总体计算量。给出了四个示例,以证明神经网络在减少计算开销方面的重要作用。

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