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Inverse Back Analysis Based on Evolutionary Neural Networks for Underground Engineering

机译:基于进化神经网络的地下工程反分析

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摘要

In essence, back analysis is a process of system identification. Therefore, artificial neural networks represent a suitable solution methodology for this problem. To overcome the shortcomings of the neural networks and evolutionary neural networks, based on immunized evolutionary programming, a new evolutionary neural network whose architecture and connection weights simultaneously evolve is proposed. Using this new evolutionary neural network, a novel inverse back analysis for underground engineering is studied. Using a numerical example and a real engineering example, namely, an underground roadway of the Huainan coal mine in China, the accuracy of this inverse back analysis is verified. Moreover, the non-uniqueness of the solution generated by the inverse back analysis is analyzed. The results show that, using the back-calculated parameters, the computed displacements agree with the measured ones. Thus, the new inverse back analysis method is demonstrated to be a high-performance method for usage in underground engineering. Moreover, various other conclusions can be drawn: the training samples of the neural network should be collected from the results of the positive analysis by the finite element method and selected based on the orthogonal experimental design, and the precision of the back analysis using multiple parameters is worse than that using a single parameter.
机译:本质上,反向分析是系统识别的过程。因此,人工神经网络代表了解决此问题的合适方法。为了克服神经网络和进化神经网络的不足,在免疫进化规划的基础上,提出了一种结构和连接权重同时进化的新型进化神经网络。使用这个新的进化神经网络,研究了一种用于地下工程的新型反向反分析。通过数值实例和工程实例,即中国淮南煤矿的地下巷道,验证了该反演分析的准确性。此外,分析了反演反分析生成的解的非唯一性。结果表明,使用反算参数,计算出的位移与实测值吻合。因此,新的反分析方法被证明是用于地下工程的高性能方法。此外,还可以得出其他各种结论:应通过有限元方法从正分析结果中收集神经网络的训练样本,并根据正交实验设计进行选择,并使用多个参数进行反分析的精度比使用单个参数更糟糕。

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