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Modeling of electrical resistivity of soil based on geotechnical properties

机译:基于岩土特性的土壤电阻率建模

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Determining the relationship between the electrical resistivity of soil and its geotechnical properties is an important engineering problem. This study aims to develop methodology for finding the best model that can be used to predict the electrical resistivity of soil, based on knowing its geotechnical properties. The research develops several linear models, three non-linear models, and three artificial neural network models (ANN). These models are applied to the experimental data set comprises 864 observations and five variables. The results show that there are significant exponential negative relationships between the electrical resistivity of soil and its geotechnical properties. The most accurate prediction values are obtained using the ANN model. The cross-validation analysis confirms the high precision of the selected predictive model. This research is the first rigorous systematic analysis and comparison of difference methodologies in ground electrical resistivity studies. It provides practical guidelines and examples of design, development and testing non-linear relationships in engineering intelligent systems and applications. (C) 2019 Published by Elsevier Ltd.
机译:确定土壤的电阻率与其岩土特性之间的关系是一个重要的工程问题。这项研究旨在开发一种方法,以便在了解土壤的岩土特性的基础上,找到可用于预测土壤电阻率的最佳模型。该研究开发了几种线性模型,三种非线性模型和三种人工神经网络模型(ANN)。这些模型应用于包含864个观测值和五个变量的实验数据集。结果表明,土壤的电阻率与其岩土性能之间存在显着的指数负相关关系。使用ANN模型可获得最准确的预测值。交叉验证分析确认了所选预测模型的高精度。这项研究是对地面电阻率研究中的不同方法进行的第一个严格的系统分析和比较。它提供了工程智能系统和应用程序中设计,开发和测试非线性关系的实用指南和示例。 (C)2019由Elsevier Ltd.发布

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