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Application of BP Neural Network in Prediction of Ground Settlement in Shield Tunneling

机译:BP神经网络在盾构隧道地面沉降预测中的应用

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Ground settlement is one of the control indicators that the shield tunnel construction pays attention to. Ground settlement is affected by multiple construction processes of shield excavation face cutting, shield crossing and shield tail protruding. This paper adopts a data-driven method and based on actual engineering data to establish the relationship between the disturbance stage of the soil in front of the shield cut, the disturbance stage of the soil above the shell, and the disturbance stage of the soil behind the shell after passing through the shell and the final settlement of the ground. The neural network model and sensitivity analysis are used to explore the influence of settlement at different stages on the final settlement. Preliminary summary of the influence degree and law of different geological conditions and the settlement value of each stage on the final consolidation settlement provides a reference for the setting of the settlement value control target value and the design of the control strategy in the actual construction process.
机译:地面定居点是盾构隧道施工注意力的控制指标之一。地面沉降受盾构挖掘面切割,盾构交叉和盾尾突出的多种施工过程的影响。本文采用数据驱动方法,并基于实际工程数据,建立盾牌前面的土壤干扰阶段之间的关系,壳体上方土壤的干扰阶段以及土壤背后的干扰阶段穿过壳后的壳和地面的最终沉降。神经网络模型和敏感性分析用于探讨在最终沉降中不同阶段的解决方案的影响。不同地质条件的影响程度和法律的初步概述以及每个阶段的最终合并解决方案的结算价值为确定的结算价值控制目标值和实际施工过程中控制策略的设计提供了参考。

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