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首页> 外文期刊>IEEE Transactions on Geoscience and Remote Sensing >A Hybrid Method for Electromagnetic Propagated Resistivity Logging Data Inversion
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A Hybrid Method for Electromagnetic Propagated Resistivity Logging Data Inversion

机译:电磁传播电阻率测井数据反演的混合方法

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Using an inverse technique for the array electromagnetic propagated resistivity logging (EPRL) data, a fine interpretation can be obtained about the resistivity distribution of an invaded profile. Generally, the Gauss-Newton algorithm (GN) is an efficient technique for the inverse problems; however, as a gradient-type optimization method, its accuracy and convergence depend strongly on the initial value. Even though this problem can be avoided by using a differential evolutionary algorithm (DE) as a global search optimization, it is computationally less efficient. In this paper, a hybrid inversion method of differential evolution has been developed to remove the strong dependence of the accuracy and convergence on the initial value. In this new method, an additional operation, which is designed with GN, is performed only to the best individual with a delay in the evolution processes of DE. Hence, the GN operation is used for the improvement of the convergence speed without leading to any decrease of the robustness of DE. The hybrid method is then extended to apply the inversion of EPRL data. Our results demonstrate its speed, steadiness, and efficiency of this hybrid method
机译:对阵列电磁传播电阻率测井(EPRL)数据使用逆技术,可以获得关于侵入剖面的电阻率分布的精细解释。通常,高斯-牛顿算法(GN)是一种有效的反问题技术。但是,作为梯度类型的优化方法,其准确性和收敛性在很大程度上取决于初始值。即使可以通过使用差分进化算法(DE)作为全局搜索优化来避免此问题,但计算效率较低。在本文中,已经开发了一种差分演化的混合反演方法,以消除精度和收敛性对初始值的强烈依赖。在这种新方法中,仅对最佳个体执行了用GN设计的附加操作,但延迟了DE的演化过程。因此,GN操作被用于提高收敛速度而不会导致DE的鲁棒性的任何降低。然后扩展混合方法以应用EPRL数据的反演。我们的结果证明了这种混合方法的速度,稳定性和效率

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