Babangida, N.M. and Mustafa, M.R.U. and Yusuf, K.W. and Isa, M.H. (2016) Prediction of pore-water pressure response to rainfall using support vector regression Prédiction de la réponse de la pression de l�eau interstitielle à la pluie en utilisant la régression à vecteurs de support Predição da resposta da pressão da água no poro à chuva usando regressão por vetores de suporte Predicción de la respuesta de la presión del agua intersticial a la precipitación mediante regresión de vectores de soporte. Hydrogeology Journal, 24 (7). pp. 1821-1833. ISSN 14312174
Full text not available from this repository.Abstract
Nonlinear complex behavior of pore-water pressure responses to rainfall was modelled using support vector regression (SVR). Pore-water pressure can rise to disturbing levels that may result in slope failure during or after rainfall. Traditionally, monitoring slope pore-water pressure responses to rainfall is tedious and expensive, in that the slope must be instrumented with necessary monitors. Data on rainfall and corresponding responses of pore-water pressure were collected from such a monitoring program at a slope site in Malaysia and used to develop SVR models to predict pore-water pressure fluctuations. Three models, based on their different input configurations, were developed. SVR optimum meta-parameters were obtained using k-fold cross validation and a grid search. Model type 3 was adjudged the best among the models and was used to predict three other points on the slope. For each point, lag intervals of 30 min, 1 h and 2 h were used to make the predictions. The SVR model predictions were compared with predictions made by an artificial neural network model; overall, the SVR model showed slightly better results. Uncertainty quantification analysis was also performed for further model assessment. The uncertainty components were found to be low and tolerable, with d-factor of 0.14 and 74 of observed data falling within the 95 confidence bound. The study demonstrated that the SVR model is effective in providing an accurate and quick means of obtaining pore-water pressure response, which may be vital in systems where response information is urgently needed. © 2016, Springer-Verlag Berlin Heidelberg.
Item Type: | Article |
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Additional Information: | cited By 6 |
Uncontrolled Keywords: | accuracy assessment; confidence interval; monitoring system; pore pressure; porewater; prediction; rainfall; slope failure; soil mechanics; support vector machine; uncertainty analysis, Malaysia |
Depositing User: | Mr Ahmad Suhairi UTP |
Date Deposited: | 09 Nov 2023 16:18 |
Last Modified: | 09 Nov 2023 16:18 |
URI: | https://khub.utp.edu.my/scholars/id/eprint/6713 |