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Using artificial neural network (ANN) in prediction of collapse settlements of sandy gravels

机译:使用人工神经网络(ANN)预测砂砾砾石的塌陷沉降

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摘要

Collapse settlement is one of the main geotechnical hazards, which should be controlled during first impoundment stage in embankment dams. Imposing large deformations and significant damages to dams makes it an important phenomenon, which should be checked during design phases. Also, existence of a variety of contributing parameters in this phenomenonmakes it difficult and complicated towell predict the potential of collapse settlement. Thus, artificial neural networks, which are commonly applied by majority of geotechnical engineers in predicting various perplexing problems, can be efficiently used to calculate the value of collapse settlement. In this paper, feedforward backpropagation neural networks are considered. And three-layered FFBPNNs with the architectures of 4-6-2 and 4-9-2 accurately predicted the coefficient of stress release and collapse settlement value, respectively. These networks were trained using 180 datasets gained from large-scale direct shear test, which were carried out on gravel materials. High correlation between measured and predicted values for both collapse settlement and coefficient of stress release can be easily understood from the coefficient of determination and root mean square error. It is shown that sand content and normal stress applied to the specimens, respectively, are most effective parameters on the collapse settlement value and coefficient of stress release.
机译:塌方沉降是主要的岩土工程危害之一,应在堤坝的第一个蓄水阶段进行控制。强加的大变形和大坝的破坏使其成为重要的现象,应在设计阶段进行检查。同样,在这种现象中存在各种贡献参数,使得很难很好地预测塌陷沉降的可能性。因此,大多数岩土工程师通常在预测各种复杂问题时普遍使用的人工神经网络可以有效地用于计算塌陷沉降的值。本文考虑了前馈反向传播神经网络。具有4-6-2和4-9-2架构的三层FFBPNN分别准确地预测了应力释放系数和塌陷沉降值。这些网络使用从大规模直接剪切试验获得的180个数据集进行了训练,这些数据是在砾石材料上进行的。从确定系数和均方根误差可以很容易地理解坍塌沉降和应力释放系数的测量值与预测值之间的高度相关性。结果表明,分别施加于试件的含砂量和法向应力是塌陷沉降值和应力释放系数的最有效参数。

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