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首页> 外文期刊>Journal of Water Resource and Protection >Application of Gamma Test and Neuro-Fuzzy Models in Uncertainty Analysis for Prediction of Pipeline Scouring Depth
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Application of Gamma Test and Neuro-Fuzzy Models in Uncertainty Analysis for Prediction of Pipeline Scouring Depth

机译:伽马检验和神经模糊模型在不确定性分析中预测管道冲刷深度的应用

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The process involved in the local scour below pipelines is so complex as to make it difficult to establish a general empirical model to provide accurate estimation for scour. This paper describes the use of an adaptive neuro-fuzzy inference system (ANFIS) and a Gamma Test (GT) to estimate the submerged pipeline scour depth. The data sets of laboratory measurements were collected from published literature and used to train the network or evolve the program. The developed networks were validated by using the observations that were not involved in training. The performance of ANFIS was found to be more effective when compared with the results of regression equations and GT Network modelling in predicting the scour depth of pipelines.
机译:管道下方局部冲刷涉及的过程非常复杂,以至于难以建立通用的经验模型来提供准确的冲刷估算。本文介绍了使用自适应神经模糊推理系统(ANFIS)和伽马测试(GT)来估计淹没管道冲刷深度的方法。实验室测量的数据集是从已出版的文献中收集的,用于训练网络或改进程序。通过使用不参与培训的观察结果验证了开发的网络。与回归方程和GT网络模型的结果相比,ANFIS的性能在预测管道冲刷深度时更为有效。

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