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- W2078906785 abstract "This study deals with development of artificial neural networks (ANNs) and multiple regression analysis (MRA) models for determining hydraulic conductivity of fine-grained soils. To achieve this, conventional falling-head tests, oedometer falling-head tests, and centrifuge tests were conducted on silty sand and marine clays compacted at different dry densities and moisture contents. Further, results obtained from ANN and MRA models were compared vis-à-vis experimental results. The performance indices such as the coefficient of determination, root mean square error, mean absolute error, and variance were used to assess the performance of these models. The ANN models exhibit higher prediction performance than the MRA models based on their performance indices. It has been demonstrated that the ANN models developed in the study can be employed for determining hydraulic conductivity of compacted fine-grained soils quite efficiently." @default.
- W2078906785 created "2016-06-24" @default.
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- W2078906785 date "2009-08-01" @default.
- W2078906785 modified "2023-10-02" @default.
- W2078906785 title "Artificial neural network (ANN) models for determining hydraulic conductivity of compacted fine-grained soils" @default.
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- W2078906785 doi "https://doi.org/10.1139/t09-035" @default.
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