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Mathematical Model and Machine Learning Techniques to Predict the Compressive Strength of Groundnut Shell Ash Blended Sandcrete

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dc.contributor.author Sathiparan, N.
dc.contributor.author Jeyananthan, P.
dc.date.accessioned 2026-09-03T05:17:43Z
dc.date.available 2026-09-03T05:17:43Z
dc.date.issued 2025
dc.identifier.uri http://repo.lib.jfn.ac.lk/ujrr/handle/123456789/12980
dc.description.abstract This study uses machine-learning (ML) methodologies to introduce predictive models for the compressive strength of sandcrete mixed with groundnut shell ash (GSA). The models were developed utilizing 140 datasets acquired from published articles. The datasets contained several input variables: aggregate-to-binder ratio, peanut shell ash concentration, and curing time. The output feature was the compressive strength of the sandcrete. Four mathematical and machine-learning models were used to predict the compressive strength of peanut shell ash-blended sandcrete. Based on analyses of several models, the boosted decision tree model outperformed others in predicting compressive strength. The sensitivity analysis outcomes of the boosted decision-tree model show that the aggregate-to-binder ratio was the most significant factor in determining compressive strength. Overall, the boosted decision-tree model achieved an R² of 0.965 during testing, indicating excellent predictive accuracy. Additionally, it was found that using 10% to 30% GSA as a cement substitute optimally enhances sandcrete strength. These findings contribute to the understanding of sustainable construction materials and support the practical application of GSA in construction. en_US
dc.language.iso en en_US
dc.publisher Universidad Nacional Autónoma de México (UNAM) en_US
dc.subject Sandcrete en_US
dc.subject Machine learning en_US
dc.subject Compressive strength en_US
dc.subject Groundnut shell ash en_US
dc.subject SHAP analysis en_US
dc.title Mathematical Model and Machine Learning Techniques to Predict the Compressive Strength of Groundnut Shell Ash Blended Sandcrete en_US
dc.type Journal full text en_US
dc.identifier.doi https://doi.org/10.22201/icat.24486736e.2025.23.6.2788 en_US


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