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首页> 外文期刊>Journal of Zhejiang University. Science, A >A deep neural network-based algorithm for solving structural optimization
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A deep neural network-based algorithm for solving structural optimization

机译:一种求解结构优化的基于深度神经网络的算法

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We propose the deep Lagrange method (DLM), which is a new optimization method, in this study. It is based on a deep neural network to solve optimization problems. The method takes the advantage of deep learning artificial neural networks to find the optimal values of the optimization function instead of solving optimization problems by calculating sensitivity analysis. The DLM method is non-linear and could potentially deal with nonlinear optimization problems. Several test cases on sizing optimization and shape optimization are performed, and their results are then compared with analytical and numerical solutions.
机译:我们在本研究中提出了深层拉格朗日方法(DLM),即新的优化方法。 它基于深度神经网络来解决优化问题。 该方法采用深度学习人工神经网络的优点,以找到优化功能的最佳值,而不是通过计算灵敏度分析来解决优化问题。 DLM方法是非线性的,可能潜在地处理非线性优化问题。 执行关于大小尺寸优化和形状优化的几种测试用例,然后将其结果与分析和数值溶液进行比较。

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