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Implementation of the use of artificial neural networks for the predictive calculation of concrete resistance, Trujillo

  • Jhordy Bryan Cóndor-Palomino
  • , Clinton Steiner Huamán-Sandoval
  • , Eduardo Manuel Noriega-Vidal
  • , Juan Carlos Martell-Ortiz
  • , Alan Yordan Valdiviezo-Velarde
  • , Álex Arquímedes Herrera-Viloche
  • Universidad César Vallejo

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

Resumen

This research aimed to implement artificial neural networks for predicting concrete strength. Specific objectives included assessing the accuracy of these networks, determining the progress of their training, and evaluating the mean square error. The applied methodology employed a non-experimental descriptive cross-sectional design. The overall conclusion highlighted the successful implementation of artificial neural networks in predicting concrete strength. The network architecture was detailed, comprising input, hidden, and output layers with 10, 19, and 1 neuron, respectively, using Matlab. Specific findings indicated a high level of accuracy at 99.997%, confirming the effectiveness of concrete strength prediction. Furthermore, a training progress of 100.00% was achieved, demonstrating the neural network's ability to adjust internal parameters and learn to predict concrete strength with provided data. Regarding the neural network's mean square error, a coefficient of MSE = 1.5949 was obtained. Ultimately, it was concluded that the use of artificial neural networks is a valid approach for estimating concrete compressive strength. This research opens promising perspectives for their future application in monitoring concrete quality.

Idioma originalInglés
Título de la publicación alojadaProceedings of the 22nd LACCEI International Multi-Conference for Engineering, Education and Technology
Subtítulo de la publicación alojadaSustainable Engineering for a Diverse, Equitable, and Inclusive Future at the Service of Education, Research, and Industry for a Society 5.0., LACCEI 2024
ISBN (versión digital)9786289520781
DOI
EstadoPublicada - 2024
Publicado de forma externa
Evento22nd LACCEI International Multi-Conference for Engineering, Education and Technology, LACCEI 2024 - Hybrid, San Jose, Costa Rica
Duración: 17 jul. 202419 jul. 2024

Serie de la publicación

NombreProceedings of the LACCEI international Multi-conference for Engineering, Education and Technology
ISSN (versión digital)2414-6390

Conferencia

Conferencia22nd LACCEI International Multi-Conference for Engineering, Education and Technology, LACCEI 2024
País/TerritorioCosta Rica
CiudadHybrid, San Jose
Período17/07/2419/07/24

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