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Published in: Geotechnical and Geological Engineering 4/2008

01-08-2008 | Original Paper

Prediction of Elastic Modulus of Jointed Rock Mass Using Artificial Neural Networks

Authors: Vidya Bhushan Maji, T. G. Sitharam

Published in: Geotechnical and Geological Engineering | Issue 4/2008

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Abstract

Two artificial neural network models for the prediction of elastic modulus of jointed rock mass from the elastic modulus of corresponding intact rock and joint parameters have been demonstrated in this paper. The data collected from uniaxial and triaxial compression tests on different rocks with different joint configurations and different confining pressure conditions, reported in the literature are used as input for training the networks. Important joint properties like joint frequency, joint inclination and roughness of joints are considered separately for making the network more versatile. Two different techniques of artificial neural networks namely feed forward back propagation (FFBP) and radial basis function (RBF) are used to predict the elastic modulus ratio.

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Metadata
Title
Prediction of Elastic Modulus of Jointed Rock Mass Using Artificial Neural Networks
Authors
Vidya Bhushan Maji
T. G. Sitharam
Publication date
01-08-2008
Publisher
Springer Netherlands
Published in
Geotechnical and Geological Engineering / Issue 4/2008
Print ISSN: 0960-3182
Electronic ISSN: 1573-1529
DOI
https://doi.org/10.1007/s10706-008-9180-9

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