An improved grey wolf optimizer algorithm for the inversion of geoelectrical data

被引:1
|
作者
Si-Yu Li
Shu-Ming Wang
Peng-Fei Wang
Xiao-Lu Su
Xin-Song Zhang
Zhi-Hui Dong
机构
[1] China University of Geosciences,Hubei Subsurface Multi
[2] China University of Geosciences,scale Imaging Key Laboratory, Institute of Geophysics and Geomatics
来源
Acta Geophysica | 2018年 / 66卷
关键词
Grey wolf optimizer; Improved grey wolf optimizer; Geoelectrical; Geoelectrical methods; Inversion;
D O I
暂无
中图分类号
学科分类号
摘要
The grey wolf optimizer (GWO) is a novel bionics algorithm inspired by the social rank and prey-seeking behaviors of grey wolves. The GWO algorithm is easy to implement because of its basic concept, simple formula, and small number of parameters. This paper develops a GWO algorithm with a nonlinear convergence factor and an adaptive location updating strategy and applies this improved grey wolf optimizer (improved grey wolf optimizer, IGWO) algorithm to geophysical inversion problems using magnetotelluric (MT), DC resistivity and induced polarization (IP) methods. Numerical tests in MATLAB 2010b for the forward modeling data and the observed data show that the IGWO algorithm can find the global minimum and rarely sinks to the local minima. For further study, inverted results using the IGWO are contrasted with particle swarm optimization (PSO) and the simulated annealing (SA) algorithm. The outcomes of the comparison reveal that the IGWO and PSO similarly perform better in counterpoising exploration and exploitation with a given number of iterations than the SA.
引用
收藏
页码:607 / 621
页数:14
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