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Prediction of the First Weighting from the Working Face Roof in a Coal Mine Based on a GA-BP Neural Network

机译:基于GA-BP神经网络的煤矿工作面屋顶的第一加权预测

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The accidents caused by roof pressure seriously restrict the improvement of mines and threaten production safety. At present, most coal mine pressure forecasting methods still rely on expert experience and engineering analogies. Artificial neural network prediction technology has been widely used in coal mines. This new approach can predict the surface pressure on the roof, which is of great significance in coal mine production safety. In this paper, the mining pressure mechanism of coal seam roofs is summarized and studied, and 60 sets of initial pressure data from multiple working surfaces in the Datong mining area are collected for gray correlation analysis. Finally, 12 parameters are selected as the input parameters of the model. Suitable back propagation (BP) and GA(genetic algorithm)-BP initial roof pressure prediction models are established for the Datong mining area and trained with MATLAB programming. By comparing the training results, we found that the optimized GA-BP model has a larger determination coefficient, smaller error, and greater stability. The research shows that the prediction method based on the GA-BP neural network model is relatively reliable and has broad engineering application prospects as an auxiliary decision-making tool for coal mine production safety.
机译:屋顶压力引起的事故严重限制了矿山的改善,威胁生产安全。目前,大多数煤矿压力预测方法仍依靠专家经验和工程类比。人工神经网络预测技术已广泛用于煤矿。这种新方法可以预测屋顶的表面压力,在煤矿生产安全方面具有重要意义。本文总结和研究了煤层屋顶的采矿压力机理,收集了来自大同挖掘区域中的多个工作表面的60套初始压力数据进行灰色相关分析。最后,选择了12个参数作为模型的输入参数。合适的回到传播(BP)和Ga(遗传算法)-BP初始屋顶压力预测模型是为大同矿区建立的,并用Matlab编程培训。通过比较培训结果,我们发现优化的GA-BP模型具有更大的确定系数,更小的误差和更大的稳定性。该研究表明,基于GA-BP神经网络模型的预测方法相对可靠,具有广泛的工程应用前景,作为煤矿生产安全的辅助决策工具。

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