Author
Listed:
- Fei Cheng
- Jun Yang
- Ziwen Zhang
- Jingliang Yu
- Xuelian Wang
- Yongdong Wu
- Zhengyi Guo
- Hui Li
- Meng Xu
- Naeem Jan
Abstract
In view of the inaccuracy of rock movement observation data and the inaccuracy of mining subsidence prediction parameters, a prediction model of mining subsidence parameters based on fuzzy clustering is proposed. Through the analysis of the main geological and mineral characteristics of mining subsidence, the geological and mineral characteristics are simplified according to the third similar theorem. The feature equation is obtained by using the equation analysis method and dimension analysis method. The original fuzzy clustering method is improved, and the IWFCM_CCS algorithm based on competitive merger strategy is obtained. The data of rock movement observation are analyzed by fuzzy clustering. The membership matrix and clustering center of observation station data are obtained, and the regression model based on the weight of membership degree is established. The accuracy and feasibility of the parameter prediction model are verified by analyzing and comparing the actual measurement data and the predicted results of the model. The method reduces the error of the predicted parameters caused by the observation data and provides a method for the future calculation of the predicted parameters.
Suggested Citation
Fei Cheng & Jun Yang & Ziwen Zhang & Jingliang Yu & Xuelian Wang & Yongdong Wu & Zhengyi Guo & Hui Li & Meng Xu & Naeem Jan, 2022.
"Prediction Model of Mining Subsidence Parameters Based on Fuzzy Clustering,"
Journal of Mathematics, Hindawi, vol. 2022, pages 1-10, February.
Handle:
RePEc:hin:jjmath:7827104
DOI: 10.1155/2022/7827104
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