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Decision Tree Model for Rockburst Prediction Based on Microseismic Monitoring

机译:基于微震监测的岩爆预测决策树模型

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Rockburst is an extremely complex dynamic instability phenomenon for rock underground excavation. It is difficult to predict and evaluate the rank level of rockburst in practice. Microseismic monitoring technology has been adopted to obtain microseismic events of microcrack in rock mass for rockburst. The possibility of rockburst can be reflected by microseismic monitoring data. In this study, a decision tree was used to extract the knowledge of rockburst from microseismic monitoring data. The predictive model of rockburst was built based on microseismic monitoring data using a decision tree algorithm. The predictive results were compared with the real rank of rockburst. The relationship between rockburst and microseismic feature data was investigated using the developed decision tree model. The results show that the decision tree can extract the rockburst feature from the microseismic monitoring data. The rockburst is predictable based on microseismic monitoring data. The decision tree provides a feasible and promising approach to predict and evaluate rockburst.
机译:Rockburst是一种极其复杂的动态不稳定现象,用于岩石地下挖掘。很难预测和评估实践中摇滚乐的等级水平。已经采用微震监测技术来获得岩爆岩体微震事件。摇滚笨蛋的可能性可以通过微震监测数据反映。在本研究中,使用决策树从微震监测数据中提取岩藻的知识。基于使用决策树算法的微震监测数据构建了Rockburst的预测模型。将预测结果与Rockburst的真正等级进行了比较。使用开发的决策树模型研究了摇滚乐与微震特征数据的关系。结果表明,决策树可以从微震监测数据中提取岩爆功能。基于微震监测数据,摇滚乐是可预测的。决策树提供了一种可行和有希望的方法来预测和评估摇滚乐。

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