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Displacement back analysis for underground engineering based on immunized continuous ant colony optimization

机译:基于免疫连续蚁群优化的地下工程位移反分析

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摘要

The objective function of displacement back analysis for rock parameters in underground engineering is a very complicated nonlinear multiple hump function. The global optimization method can solve this problem very well. However, many numerical simulations must be performed during the optimization process, which is very time consuming. Therefore, it is important to improve the computational efficiency of optimization back analysis. To improve optimization back analysis, a new global optimization, immunized continuous ant colony optimization, is proposed. This is an improved continuous ant colony optimization using the basic principles of an artificial immune system and evolutionary algorithm. Based on this new global optimization, a new displacement optimization back analysis for rock parameters is proposed. The computational performance of the new back analysis is verified through a numerical example and a real engineering example. The results show that this new method can be used to obtain suitable parameters of rock mass with higher accuracy and less effort than previous methods. Moreover, the new back analysis is very robust.
机译:地下工程中岩石参数的位移反分析的目标函数是一个非常复杂的非线性多重峰函数。全局优化方法可以很好地解决这个问题。但是,在优化过程中必须执行许多数值模拟,这非常耗时。因此,重要的是提高优化反分析的计算效率。为了改进优化反分析,提出了一种新的全局优化方法,即免疫连续蚁群优化方法。这是使用人工免疫系统和进化算法的基本原理进行的改进的连续蚁群优化。基于这一新的全局优化算法,提出了一种新的岩石参数位移优化反分析方法。通过数值实例和实际工程实例验证了新反分析的计算性能。结果表明,与以前的方法相比,该新方法可以更准确,更省力地获得合适的岩体参数。此外,新的反向分析功能非常强大。

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