Support Vector Machine (SVM) Application for Uniaxial Compression Strength (UCS) Prediction: A Case Study for Maragheh Limestone

Publication date

2023-02-09

Authors

Cemiloglu, Ahmed
Licai, Zhu
Arslan, Sibel
Xu, Jinxia
Yuan, Xiaofeng
Azarafza, Mohammad
Derakhshani, RezaORCID 0000-0001-7499-4384ISNI 0000000512522591

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Advisors

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Document Type

Article
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cc_by

Abstract

Featured Application: AI application in UCS prediction for limestones of Maragheh. The geomechanical properties of rock materials, such as uniaxial compression strength (UCS), are the main requirements for geo-engineering design and construction. A proper understanding of UCS has a significant impression on the safe design of different foundations on rocks. So, applying fast and reliable approaches to predict UCS based on limited data can be an efficient alternative to regular traditional fitting curves. In order to improve the prediction accuracy of UCS, the presented study attempted to utilize the support vector machine (SVM) algorithm. Multiple training and testing datasets were prepared for the UCS predictions based on a total of 120 samples recorded on limestone from the Maragheh region, northwest Iran, which were used to achieve a high precision rate for UCS prediction. The models were validated using a confusion matrix, loss functions, and error tables (MAE, MSE, and RMSE). In addition, 24 samples were tested (20% of the primary dataset) and used for the model justifications. Referring to the results of the study, the SVM (accuracy = 0.91/precision = 0.86) showed good agreement with the actual data, and the estimated coefficient of determination (R2) reached 0.967, showing that the model’s performance was impressively better than that of traditional fitting curves.

Keywords

uniaxial compression strength, support vector machine, fitting curves, prediction performance, limestone

Citation

Cemiloglu, A, Licai, Z, Arslan, S, Xu, J, Yuan, X, Azarafza, M & Derakhshani, R 2023, 'Support Vector Machine (SVM) Application for Uniaxial Compression Strength (UCS) Prediction : A Case Study for Maragheh Limestone', Applied Sciences, vol. 13, no. 4, 2217, pp. 1-14. https://doi.org/10.3390/app13042217