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Research on the Integrated Neural Network Water Inrush Prediction System Based on Takagi-Sugeno Fuzzy Criteria

机译:基于Takagi-Sugeno模糊标准的基于Takagi-Sugeno模糊标准的综合神经网络水中预测系统研究

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The accurate prediction of water inrush is the key point of safely mining on artesian water, however, there are still lots of difficulties in the quantitative analysis on the influence degree to water inrush of each factor itself and comprehensive influence mutually, or it is in a fuzzy cognitive state. In this paper, on the basis of artificial neural network, the conventional fuzzy algorithm criteria is improved, the integrated neural network water inrush prediction system based on Takagi-Sugeno fuzzy criteria is established, nonlinear relations of mutual and fuzzy functions of various factors that affecting water inrush is better dealt with and according to the training and testing on the network model by a large number of field data, the feasibility, effectiveness and accuracy of using the integrated neural network water inrush prediction system to forecast the probability and quantity of water inrush is proved and great practical significance to guide and ensure safely mining upon artesian water is provided.
机译:水中涌入的准确预测是安全挖掘艺术水的关键点,然而,在对每个因素本身的影响程度和相互综合影响的情况下对水涌的影响程度的定量分析仍有很大困难,或者它处于综合影响模糊认知状态。本文在人工神经网络的基础上,传统的模糊算法标准得到改善,建立了基于Takagi-Sugeno模糊标准的集成神经网络水中预测系统,各种因素的相互和模糊函数的非线性关系通过大量的现场数据,使用集成神经网络水中涌动预测系统的培训和测试,根据网络模型的培训和测试,更好地处理网络模型的培训和测试。使用inded神经网络水中涌动预测系统来预测水涌的概率和数量事实证明和巨大的实用意义,以指导和确保安全开采艺术水。

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