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Application of Principal Component Analysis Approach to Predict Shear Strength of Reinforced Concrete Beams with Stirrups

机译:主成分分析方法在搅拌型钢筋混凝土梁预测剪切强度的应用

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摘要

The reinforced concrete (RC) member’s shear strength estimation has been experimentally studied in most cases due to its nonlinear behavior. Many empirical equations have been derived from the experimental data; however, even those adopted in the construction codes do not thoroughly and accurately describe their shear behavior. Theoretically explained equations, on the other hand, are aligned with the experiment; however, they are complicated to use in practice. As shear behavior research is data-driven, the machine learning technique is applicable. Herein, an artificial neural network (ANN) algorithm is trained with 776 experiment results collected from available publications. The raw data is preprocessed by principal component analysis (PCA) before the application of the ANN technique. The predictions of the trained algorithm using ANN with PCA are compared to those of formulae adopted in a few existing building codes. Finally, a parametric study is conducted, and the significance of each variable to the strength of RC members is analyzed.
机译:由于其非线性行为,在大多数情况下,钢筋混凝土(RC)构件的剪切强度估计已经在大多数情况下进行了实验研究。许多经验方程来自实验数据;然而,即使是建筑码中采用的那些也不会彻底,准确地描述其剪切行为。另一方面,理论上解释的方程与实验对齐;但是,它们在实践中使用很复杂。由于剪切行为研究是数据驱动的,机器学习技术适用。这里,从可用的出版物收集的776个实验结果训练了人工神经网络(ANN)算法。在应用ANN技术之前,原始数据被主成分分析(PCA)预处理。将培训算法使用ANN与PCA的预测相比,与一些现有的建筑码中采用的公式进行比较。最后,分析了参数研究,分析了每个变量与RC成员强度的重要性。

著录项

  • 期刊名称 Materials
  • 作者单位
  • 年(卷),期 2021(14),13
  • 年度 2021
  • 页码 3471
  • 总页数 20
  • 原文格式 PDF
  • 正文语种
  • 中图分类 外科学;
  • 关键词

    机译:剪切强度;钢筋混凝土梁;人工神经网络;主成分分析;
  • 入库时间 2022-08-21 12:33:20

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