Asynchronous MMC PSA inversion of transient electromagnetic data

被引:1
|
作者
Liu, Shangbin [1 ,2 ]
Wang, Yongxin [1 ,2 ]
Sun, Huaifeng [1 ,2 ,3 ]
Yang, Yang [1 ,2 ,3 ]
机构
[1] Shandong Univ, Geotech & Struct Engn Res Ctr, Jinan, Peoples R China
[2] Shandong Univ, Lab Earth Electromagnet Explorat, Jinan, Peoples R China
[3] Shandong Res Inst Ind Technol, Adv Explorat & Transparent City Innovat Ctr, Jinan, Peoples R China
基金
中国国家自然科学基金;
关键词
Ground transient electromagnetic; inversion; very fast simulated annealing; parallelization; asynchronous multiple Markov chains; solution set; GLOBAL OPTIMIZATION; COOLING SCHEDULES; MODELS; RESISTIVITY;
D O I
10.1080/08123985.2022.2027730
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
This paper focuses on low computational efficiency in simulated annealing (SA) inversion of Transient Electromagnetic (TEM) data. Asynchronous multiple Markov chains (MMC) parallel strategy is a very promising SA acceleration method, which can be accelerated almost linearly. However, this method also reduces the accuracy of the solution. To overcome this problem, we added the solution set strategy to the asynchronous MMC parallel simulated annealing (PSA) algorithm for the first time. In this new algorithm, each thread independently searches for direction and exchanges data with the solution set in the shared memory. We used both the synthetic and field data to test the new algorithm. The synthetic data tests showed that the MMC PSA results are better than those of the original MMC PSA. We analyzed the efficiency of the new algorithm. Compared with the sequential VFSA, the maximum speedup of the new algorithm is approximately 10 times. The field data test also showed that the improved MMC PSA algorithm has good practicability. These tests demonstrate that the improved algorithm is effective, showing that its convergence speed is greatly improved without reducing the accuracy.
引用
收藏
页码:602 / 619
页数:18
相关论文
共 50 条
  • [41] Least square regularization inversion of transient electromagnetic method
    Li, Fengping
    Yang, Haiyan
    PROCEEDINGS OF THE 7TH INTERNATIONAL CONFERENCE ON ENVIRONMENT AND ENGINEERING GEOPHYSICS (ICEEG) & SUMMIT FORUM OF CHINESE ACADEMY OF ENGINEERING ON ENGINEERING SCIENCE AND TECHNOLOGY, 2016, 71 : 161 - 164
  • [42] Bayesian Markov Chain Monte Carlo inversion of surface-based transient electromagnetic data
    Deng, Shengqiang
    Zhang, Nuoya
    Kuang, Bo
    Li, Yaohua
    Sun, Huaifeng
    SN APPLIED SCIENCES, 2022, 4 (10):
  • [43] TRANSIENT ELECTROMAGNETIC INVERSION - A REMEDY FOR MAGNETOTELLURIC STATIC SHIFTS
    PELLERIN, L
    HOHMANN, GW
    GEOPHYSICS, 1990, 55 (09) : 1242 - 1250
  • [44] New advances in three dimensional transient electromagnetic inversion
    Newman, GA
    Commer, M
    GEOPHYSICAL JOURNAL INTERNATIONAL, 2005, 160 (01) : 5 - 32
  • [45] Transient electromagnetic S-inversion in tunnel prediction
    Xue, G. Q.
    Yan, Y. J.
    Li, X.
    Di, Q. Y.
    GEOPHYSICAL RESEARCH LETTERS, 2007, 34 (18)
  • [46] Deep learning transient electromagnetic inversion for seawater intrusion
    Wang, Liang
    Dai, Yunfeng
    Liu, Wei
    Zhou, Sheng
    Long, Xia
    Xi, Zhenzhu
    Xue, Junping
    Wang, Wei
    JOURNAL OF GEOPHYSICS AND ENGINEERING, 2024, 21 (06) : 1810 - 1821
  • [47] Numerical Laplace Inversion Methods for Electromagnetic Transient Simulations
    Castanon, L. J.
    Zuluaga, J. R.
    Naredo, J. L.
    2016 NORTH AMERICAN POWER SYMPOSIUM (NAPS), 2016,
  • [48] Interaction of electromagnetic and mechanical transient processes in asynchronous vibrational motors
    Alimkhodzhaev, K.T.
    Russian Electrical Engineering, 2003, 74 (08) : 23 - 28
  • [49] INVERSION OF GLOBAL ELECTROMAGNETIC INDUCTION DATA
    ANDERSSEN, RS
    PHYSICS OF THE EARTH AND PLANETARY INTERIORS, 1975, 10 (03) : 292 - 298
  • [50] Electromechanical Transient and Electromagnetic Transient Hybrid Modeling and Simulation of back to back MMC-HVDC Project
    Fan, Yunlong
    Ren, Jianwen
    Ye, Xiaohui
    Li, Xia
    2018 2ND IEEE CONFERENCE ON ENERGY INTERNET AND ENERGY SYSTEM INTEGRATION (EI2), 2018, : 194 - 199