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Metal Mine ›› 2013, Vol. 42 ›› Issue (03): 9-13.

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Prediction of Surrounding Rock Deformation Modulus of Roadway Base on GA-BPNN

Wang Deyong1,2,Yuan Yanbin1,Chen Ying1   

  1. 1.School of Resources and Environmental Engineering,Wuhan University of Technology;2.Department of Computing,Pingdingshan Industrial College of Technology
  • Online:2013-03-15 Published:2013-04-16

Abstract: The effectiveness of the genetic algorithm (GA) in the design and BPNN structure optimization and its application in the prediction of rock mass deformation modulus was researched. GA is used to find out the optimal number of neurons in the hidden layer and learning factor and momentum factor of the hidden layer and output layer,and then compared with the trial-and-error process. 76 groups of data sets derived from the actual roadway were used to validate this method. With performance criteria such as MSE,MAE and R,it is proved that GA-BPNN model is better than BPNN trial-and-error model in the prediction of rock mass deformation modulus.

Key words: Surrounding rock, Deformation modulus, Prediction, GA-BPNN