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An artificial neural network-differential evolution approach for optimization of bidirectional functionally graded beams

机译:用于优化双向功能梯度梁的人工神经网络差分进化方法

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摘要

A novel and effective artificial neural network (ANN)-differential evolution (DE) approach as an integration of ANN into DE is first introduced to the material distribution optimization of bidirectional functionally graded (BFG) beams under free vibration. In this methodology, ANN is utilized as an analyzer to predict responses of BFG beams instead of directly solving eigenvalue problems via time-consuming finite element analyses (FEAs). Meanwhile, DE is employed as an optimizer for optimization problems without complex sensitivity analyses. Accordingly, the ANN-DE significantly reduces the computational cost, yet still achieving a high-quality global solution. The material volume fraction at control points defined based on the isogeometric analysis (IGA) concept is taken as continuous design variables. Optimal material profiles are represented by two-dimensional Non-Uniform Rational B-spline (NURBS) basis functions. Obtained results are compared with those of existing literature to demonstrate the accuracy and reliability of the proposed paradigm. Additionally, the ANN-DE is also applied to several other examples to further prove its effectiveness and robustness in dramatically saving the computational efforts, while still yielding optimal outcomes with high accuracy.
机译:一种新颖且有效的人工神经网络(ANN) - 多样化的进化(DE)方法作为ANN进入DE的集成,首先引入自由振动下双向功能梯度(BFG)梁的材料分布优化。在该方法中,ANN被用作分析仪以预测BFG光束的响应,而不是通过耗时的有限元分析(FEAS)直接求解特征值问题。同时,DE被用作优化问题的优化器,而无需复杂的敏感性分析。因此,ANN-DE显着降低了计算成本,但仍然实现了高质量的全球解决方案。基于异诊测分析(IGA)概念定义的控制点的材料体积分数被视为连续设计变量。最佳材料型材由二维非均匀RATIONAT B样条(NURBS)基函数表示。将获得的结果与现有文献的结果进行比较,以证明所提出的范例的准确性和可靠性。另外,Ann-de也应用于其他几个例子,以进一步证明其有效性和鲁棒性,在大大节省计算工作,同时仍然含有高精度的最佳结果。

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