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Evaluating the impact of industrial wastes on the compressive strength of concrete using closed-form machine learning algorithms

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Evaluating the impact of industrial wastes on the compressive strength of concrete using closed-form machine learning algorithms

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López Paredes, CR.; García, C.; Onyelowe, KC.; Zúñiga Rodríguez, MG.; Gnananandarao, T.; Andrade-Valle, AI.; Velasco, N.... (2024). Evaluating the impact of industrial wastes on the compressive strength of concrete using closed-form machine learning algorithms. Frontiers in Built Environment. 10. https://doi.org/10.3389/fbuil.2024.1453451

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Título: Evaluating the impact of industrial wastes on the compressive strength of concrete using closed-form machine learning algorithms
Autor: López Paredes, Carlos Roberto García, Cesar Onyelowe, Kennedy C. Zúñiga Rodríguez, María Gabriela Gnananandarao, Tammineni Andrade-Valle, Alexis Iván Velasco, Nancy Herrera Morales, Greys Carolina
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Resumen:
[EN] Industrial wastes have found great use in the built environment due to the role they play in the sustainable infrastructure development especially in green concrete production. In this research investigation, the ...[+]
Palabras clave: Green concrete , Industrial wastes , Compressive strength , M5P , ANN , Sensitivity analysis
Derechos de uso: Reconocimiento (by)
Fuente:
Frontiers in Built Environment. (eissn: 2297-3362 )
DOI: 10.3389/fbuil.2024.1453451
Editorial:
Frontiers Media
Versión del editor: https://doi.org/10.3389/fbuil.2024.1453451
Tipo: Artículo

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