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ANFIS method for ultimate strength prediction of unstiffened plates with pitting corrosion

机译:ANFIS方法预测点蚀未加筋板的极限强度

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Increasing attention has recently been paid to the effects of localised pitting corrosion on the ultimate strength of marine structures. In this paper, an adaptive neuro-fuzzy inference system (ANFIS) method was developed to predict the ultimate strength reduction of steel plates with pitting corrosion subjected to uniaxial in-plane compressive loads. Published ultimate strength data-sets for unstiffened plates affected by pitting corrosion were used to train and test a series of ANFIS models composed of several input variables. To develop the best accurate model, rule-based fuzzy sets were used for mapping the inputs to the output using seven different types of membership functions. The two-sided Gaussian-type function was found to be more effective and less sensitive to the sample size than other functions tested. The developed method provided good estimates (maximum RMSE of 0.019) in comparison with published results obtained using the finite element and artificial neural network methods.
机译:最近,人们越来越关注局部点蚀对海洋结构极限强度的影响。在本文中,开发了一种自适应神经模糊推理系统(ANFIS)方法来预测在单轴面内压缩载荷下具有点蚀腐蚀的钢板的极限强度降低。使用已发布的针对受点蚀腐蚀的未加筋板的极限强度数据集来训练和测试一系列由多个输入变量组成的ANFIS模型。为了开发最佳的精确模型,使用了基于规则的模糊集,使用七种不同类型的隶属函数将输入映射到输出。发现双面高斯型函数比其他测试函数更有效,对样本大小的敏感性更低。与使用有限元和人工神经网络方法获得的公开结果相比,该开发方法提供了良好的估计(最大RMSE为0.019)。

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