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Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches

The entraining and distribution of air voids in the concrete matrix is a complex process that makes the mechanical properties of lightweight foamed concrete (LFC) highly unpredictable. To study the complex nature of aerated concrete, a reliable and robust prediction model is required, employing diff...

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Autores principales: Ullah, Haji Sami, Khushnood, Rao Arsalan, Farooq, Furqan, Ahmad, Junaid, Vatin, Nikolai Ivanovich, Ewais, Dina Yehia Zakaria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9102231/
https://www.ncbi.nlm.nih.gov/pubmed/35591498
http://dx.doi.org/10.3390/ma15093166
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author Ullah, Haji Sami
Khushnood, Rao Arsalan
Farooq, Furqan
Ahmad, Junaid
Vatin, Nikolai Ivanovich
Ewais, Dina Yehia Zakaria
author_facet Ullah, Haji Sami
Khushnood, Rao Arsalan
Farooq, Furqan
Ahmad, Junaid
Vatin, Nikolai Ivanovich
Ewais, Dina Yehia Zakaria
author_sort Ullah, Haji Sami
collection PubMed
description The entraining and distribution of air voids in the concrete matrix is a complex process that makes the mechanical properties of lightweight foamed concrete (LFC) highly unpredictable. To study the complex nature of aerated concrete, a reliable and robust prediction model is required, employing different machine learning (ML) techniques. This study aims to predict the compressive strength of LFC by using a support vector machine (SVM) as an individual learner along with bagging, boosting, and random forest (RF) as a modified ensemble learner. For that purpose, a database of 191 data points was collected from published literature, where the mix design ingredients, i.e., cement content, sand content, water to cement ratio, and foam volume, were chosen to predict the compressive strength of LFC. The 10-K fold cross-validation method and different statistical error and regression tools, i.e., mean absolute error (MAE), root means square error (RMSE), and coefficient of determinant (R(2)), were used to evaluate the performance of the developed ML models. The modified ensemble learner (RF) outperforms all models by yielding a strong correlation of R(2) = 0.96 along with the lowest statistical error values of MAE = 1.84 MPa and RMSE = 2.52 MPa. Overall, the result suggests that the ensemble learners would significantly enhance the performance and robustness of ML models.
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spelling pubmed-91022312022-05-14 Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches Ullah, Haji Sami Khushnood, Rao Arsalan Farooq, Furqan Ahmad, Junaid Vatin, Nikolai Ivanovich Ewais, Dina Yehia Zakaria Materials (Basel) Article The entraining and distribution of air voids in the concrete matrix is a complex process that makes the mechanical properties of lightweight foamed concrete (LFC) highly unpredictable. To study the complex nature of aerated concrete, a reliable and robust prediction model is required, employing different machine learning (ML) techniques. This study aims to predict the compressive strength of LFC by using a support vector machine (SVM) as an individual learner along with bagging, boosting, and random forest (RF) as a modified ensemble learner. For that purpose, a database of 191 data points was collected from published literature, where the mix design ingredients, i.e., cement content, sand content, water to cement ratio, and foam volume, were chosen to predict the compressive strength of LFC. The 10-K fold cross-validation method and different statistical error and regression tools, i.e., mean absolute error (MAE), root means square error (RMSE), and coefficient of determinant (R(2)), were used to evaluate the performance of the developed ML models. The modified ensemble learner (RF) outperforms all models by yielding a strong correlation of R(2) = 0.96 along with the lowest statistical error values of MAE = 1.84 MPa and RMSE = 2.52 MPa. Overall, the result suggests that the ensemble learners would significantly enhance the performance and robustness of ML models. MDPI 2022-04-27 /pmc/articles/PMC9102231/ /pubmed/35591498 http://dx.doi.org/10.3390/ma15093166 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ullah, Haji Sami
Khushnood, Rao Arsalan
Farooq, Furqan
Ahmad, Junaid
Vatin, Nikolai Ivanovich
Ewais, Dina Yehia Zakaria
Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches
title Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches
title_full Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches
title_fullStr Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches
title_full_unstemmed Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches
title_short Prediction of Compressive Strength of Sustainable Foam Concrete Using Individual and Ensemble Machine Learning Approaches
title_sort prediction of compressive strength of sustainable foam concrete using individual and ensemble machine learning approaches
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9102231/
https://www.ncbi.nlm.nih.gov/pubmed/35591498
http://dx.doi.org/10.3390/ma15093166
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