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Erschienen in: Rock Mechanics and Rock Engineering 2/2013

01.03.2013 | Original Paper

Prediction of Backbreak in Open-Pit Blasting Operations Using the Machine Learning Method

verfasst von: Manoj Khandelwal, M. Monjezi

Erschienen in: Rock Mechanics and Rock Engineering | Ausgabe 2/2013

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Abstract

Backbreak is an undesirable phenomenon in blasting operations. It can cause instability of mine walls, falling down of machinery, improper fragmentation, reduced efficiency of drilling, etc. The existence of various effective parameters and their unknown relationships are the main reasons for inaccuracy of the empirical models. Presently, the application of new approaches such as artificial intelligence is highly recommended. In this paper, an attempt has been made to predict backbreak in blasting operations of Soungun iron mine, Iran, incorporating rock properties and blast design parameters using the support vector machine (SVM) method. To investigate the suitability of this approach, the predictions by SVM have been compared with multivariate regression analysis (MVRA). The coefficient of determination (CoD) and the mean absolute error (MAE) were taken as performance measures. It was found that the CoD between measured and predicted backbreak was 0.987 and 0.89 by SVM and MVRA, respectively, whereas the MAE was 0.29 and 1.07 by SVM and MVRA, respectively.

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Metadaten
Titel
Prediction of Backbreak in Open-Pit Blasting Operations Using the Machine Learning Method
verfasst von
Manoj Khandelwal
M. Monjezi
Publikationsdatum
01.03.2013
Verlag
Springer Vienna
Erschienen in
Rock Mechanics and Rock Engineering / Ausgabe 2/2013
Print ISSN: 0723-2632
Elektronische ISSN: 1434-453X
DOI
https://doi.org/10.1007/s00603-012-0269-3

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