Application of GA-BP to Back Analysis of Rock’s Parameters

Author:

Wang Guo Feng1,Zhao Wen1,Guan Yong Ping1,Li Shen Gang1

Affiliation:

1. Northeastern University

Abstract

The selection of material parameters relates to the excavation stability of the underground caverns. However, back analysis is an efficient method to evaluate mechanical parameters. Given the defects of BP neural network, such as low capability of generalization and long training time, by using GA, which have global optimization ability to optimize the BP neural network weights. The parameter of surrounding rock was designed by uniform and orthogonal method, not only reduced the iterative time also improved the accuracy of the prediction. The proposed method is further illustrated with its application to the underground cavern of Lvchunba railway tunnel. Based on the surrounding rock’s parameters obtained by back analysis, the displacement of the surrounding rock was predicted. The results showed that the error between numerical calculation value and actual monitoring value was 13.2%,-8.3%,-8.9%,9.4% respectively.

Publisher

Trans Tech Publications, Ltd.

Subject

General Engineering

Reference8 articles.

1. Guo-jin Cao, Chao Su, Hong-dao Jiang. Rock and Soil Mechanics, Vol. 22(2011) , pp.303-306.

2. Shu-hong Wang, Jun Tian, Fu-kun Xiao. Journal of Northeastern University(Natural Science), Vol. 21 (2000), pp.562-565.

3. Kavanagh K T. Clough R W. Int J Solid structure, Vol. 7 (1972), pp.11-23.

4. Shu-hong Wang, Fu-sheng Zhu, Kai Zhang. Chinese Journal of Rock Mechanics and Engineering, Vol. 21 (2002), pp.590-594.

5. The Railway ministry of PRC, Design Criterion of Railway Tunnel, Beijing: China Railway Publishing House.

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