NNR Artificial Intelligence Model in Azure for Bearing Prediction and Analysis

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Open AccessArticle

NNR Artificial Intelligence Model in Azure for Bearing Prediction and Analysis

1 University of Lagos, Akoka, Lagos, Department of Mechanical Engineering, Lagos, 101017, Nigeria
2 Tshwane University of Technology, Department of Computer Systems Engineering, Soshanguve Campus, 0183, South Africa
3 Federal University of Petroleum Resources, Effurun, Department of Mechanical Engineering, Effurun, 330102, Nigeria
*whom correspondence should be addressed. E-mail: omoregbeeho@gmail.com

Journal of Engineering Research and Sciences, Volume 2, Issue 6, Page # 1-9, 2023; DOI: 10.55708/js0206001

Keywords: Artificial Intelligence Model, Forecasting, Microsoft Azure Machine Learning, Neural Network regression (NNR), Remaining Useful Life (RUL), Multilayer perceptron (MLP)

Received: 28 January 2023, Revised: 6 March 2023, Accepted: 15 April 2023, Published Online: 30 June 2023

(This article belongs to the Special Issue on Special Issue on Multidisciplinary Sciences and Advanced Technology (SI-MSAT 2023) and the Section Artificial Intelligence – Computer Science (AIC))

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APA Style
Omoregbee, H. O. , Olanipekun, M. U. and Edward, B. A. (2023). NNR Artificial Intelligence Model in Azure for Bearing Prediction and Analysis. Journal of Engineering Research and Sciences, 2(6), 1–9. https://doi.org/10.55708/js0206001
Chicago/Turabian Style
Henry Ogbemudia Omoregbee, Mabel Usunobun Olanipekun and Bright Aghogho Edward. "NNR Artificial Intelligence Model in Azure for Bearing Prediction and Analysis." Journal of Engineering Research and Sciences 2, no. 6 (June 2023): 1–9. https://doi.org/10.55708/js0206001
IEEE Style
H.O. Omoregbee, M.U. Olanipekun and B.A. Edward, "NNR Artificial Intelligence Model in Azure for Bearing Prediction and Analysis," Journal of Engineering Research and Sciences, vol. 2, no. 6, pp. 1–9, Jun. 2023, doi: 10.55708/js0206001.
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