Open Access
Open access
volume 10 issue 19 pages e37876

Prediction and Minimization of Blasting Flyrock Distance, Using Deep Neural Networks and Gravitational Search Algorithm, JAYA, and Multi-Verse Optimization algorithms

Eslam Ghojoghi 1
Mohamad Ali Ebrahimi Farsangi 1
Hamid Mansouri 1
Esmat Rashedi 2
2
 
Communication Engineering, Faculty of Electrical and Computer Engineering, Graduate University of Advanced Technology, Kerman, Iran.
Publication typeJournal Article
Publication date2024-10-01
scimago Q1
wos Q1
SJR0.644
CiteScore4.1
Impact factor3.6
ISSN24058440
Abstract
Flyrock represents a significant and fundamental challenge in surface mine blasting, carrying inherent risks to humans and the environment. Consequently, accurate prediction, minimization, and identification of the factors influencing flyrock distance are imperative for effective control and mitigation of its destructive consequences. Machine learning and artificial intelligence methodologies have emerged as viable means to predict and simulate in different scientific fields. This study employs Deep Neural Network in conjunction with three optimization algorithms including the JAYA Algorithm, Multi-Verse Optimization Algorithm, and Gravitational Search Algorithm to predict blasting flyrock distance. The developed model consists of a combination of seven input parameters, encompassing both blasting design parameters and rock geomechanical properties. The output of the Deep Neural Networks model is the flyrock distance. For the training and testing of the model, a dataset comprising of 245 blasting records, collected from Songun copper mine, Iran, was utilized. The DNN model yielded an R2 value of 0.96 and an MSE value of 34.11. These results demonstrate the high accuracy and predictive capability of the model. Furthermore, the application of three optimization algorithms resulted in similar optimized parameter values, which minimized flyrock distances.
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GOST |
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GOST Copy
Ghojoghi E. et al. Prediction and Minimization of Blasting Flyrock Distance, Using Deep Neural Networks and Gravitational Search Algorithm, JAYA, and Multi-Verse Optimization algorithms // Heliyon. 2024. Vol. 10. No. 19. p. e37876.
GOST all authors (up to 50) Copy
Ghojoghi E., Ebrahimi Farsangi M. A., Mansouri H., Rashedi E. Prediction and Minimization of Blasting Flyrock Distance, Using Deep Neural Networks and Gravitational Search Algorithm, JAYA, and Multi-Verse Optimization algorithms // Heliyon. 2024. Vol. 10. No. 19. p. e37876.
RIS |
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RIS Copy
TY - JOUR
DO - 10.1016/j.heliyon.2024.e37876
UR - https://linkinghub.elsevier.com/retrieve/pii/S2405844024139072
TI - Prediction and Minimization of Blasting Flyrock Distance, Using Deep Neural Networks and Gravitational Search Algorithm, JAYA, and Multi-Verse Optimization algorithms
T2 - Heliyon
AU - Ghojoghi, Eslam
AU - Ebrahimi Farsangi, Mohamad Ali
AU - Mansouri, Hamid
AU - Rashedi, Esmat
PY - 2024
DA - 2024/10/01
PB - Elsevier
SP - e37876
IS - 19
VL - 10
PMID - 39386766
SN - 2405-8440
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2024_Ghojoghi,
author = {Eslam Ghojoghi and Mohamad Ali Ebrahimi Farsangi and Hamid Mansouri and Esmat Rashedi},
title = {Prediction and Minimization of Blasting Flyrock Distance, Using Deep Neural Networks and Gravitational Search Algorithm, JAYA, and Multi-Verse Optimization algorithms},
journal = {Heliyon},
year = {2024},
volume = {10},
publisher = {Elsevier},
month = {oct},
url = {https://linkinghub.elsevier.com/retrieve/pii/S2405844024139072},
number = {19},
pages = {e37876},
doi = {10.1016/j.heliyon.2024.e37876}
}
MLA
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MLA Copy
Ghojoghi, Eslam, et al. “Prediction and Minimization of Blasting Flyrock Distance, Using Deep Neural Networks and Gravitational Search Algorithm, JAYA, and Multi-Verse Optimization algorithms.” Heliyon, vol. 10, no. 19, Oct. 2024, p. e37876. https://linkinghub.elsevier.com/retrieve/pii/S2405844024139072.