Application of the source-receiver compression scheme for 3D microwave data inversions

被引:0
|
作者
Abubakar, Aria [1 ]
Pan, Guangdong [1 ]
Habashy, Tarek M. [1 ]
机构
[1] Schlumberger Doll Res Ctr, Cambridge, MA USA
关键词
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We apply a source-receiver compression approach to reduce the computational time and memory usage of the nonlinear inversion approaches for interpreting three-dimensional microwave data. By detecting and quantifying the extent of redundancy in the data, we assemble a reduced set of simultaneous sources and receivers that are weighted sums of the physical sources and receivers employed in the measurement setup. Because the number of these simultaneous sources and receivers can be significantly less than those of the physical sources and receivers, the computational time and memory usage of any inversion method such as steepest-descent, nonlinear conjugate-gradient, contrast-source inversion and quasi-Newton can be tremendously reduced. The scheme is based on decomposing the data into their principal components using a singular-value decomposition approach and the data reduction is done through the elimination of eigenvectors corresponding to small eigenvalues. Consequently, this will also suppress the effect of noise in the data. As a demonstration we show that this approach has the potential of significantly reducing both computational time and memory usage of the Gauss-Newton method by few orders of magnitude.
引用
收藏
页码:2553 / 2556
页数:4
相关论文
共 50 条
  • [31] Dynamic data reshaping for 3D mesh animation compression
    Guoliang Luo
    Xin Zhao
    Qiang Chen
    Zhiliang Zhu
    Chuhua Xian
    Multimedia Tools and Applications, 2022, 81 : 55 - 72
  • [32] Compression of 3D Mesh Based on Normal Data Prediction
    Gao Y.
    Shi Y.-H.
    Han Y.-Y.
    Zeng P.
    Yin B.-C.
    Beijing Ligong Daxue Xuebao/Transaction of Beijing Institute of Technology, 2019, 39 (01): : 88 - 94
  • [33] Adaptive data compression on 3D Network-on-Chips
    He, Yuan
    Matsutani, Hiroki
    Sasaki, Hiroshi
    Nakamura, Hiroshi
    IPSJ Online Transactions, 2012, 5 (2012): : 13 - 20
  • [34] A comparative study on 3D range data compression methods
    Bell, Tyler
    Zhang, Song
    DIMENSIONAL OPTICAL METROLOGY AND INSPECTION FOR PRACTICAL APPLICATIONS V, 2016, 9868
  • [35] 3D Wavelet encoder for depth map data compression
    Martinez-Rach, Miguel
    Lopez-Granado, Otoniel
    Pinol, Pablo
    Malumbres, Manuel P.
    2013 DATA COMPRESSION CONFERENCE (DCC), 2013, : 508 - 508
  • [36] Evaluation of Compression Algorithms for 3D Pavement Image Data
    Li, Joshua Qiang
    Wang, Kelvin C. P.
    Yang, Guangwei
    JOURNAL OF INFRASTRUCTURE SYSTEMS, 2021, 27 (04)
  • [37] Dynamic data reshaping for 3D mesh animation compression
    Luo, Guoliang
    Zhao, Xin
    Chen, Qiang
    Zhu, Zhiliang
    Xian, Chuhua
    MULTIMEDIA TOOLS AND APPLICATIONS, 2022, 81 (01) : 55 - 72
  • [38] 3D volume data compression based on adaptive wavelet
    Ke, Yongzhen
    Sun, Jizhou
    Zhang, Jiawan
    Li, Jiaming
    WCICA 2006: SIXTH WORLD CONGRESS ON INTELLIGENT CONTROL AND AUTOMATION, VOLS 1-12, CONFERENCE PROCEEDINGS, 2006, : 794 - 794
  • [39] Compression of 3D pin-by-pin burnup data
    Tomatis, Daniele
    Dall'Osso, Aldo
    ANNALS OF NUCLEAR ENERGY, 2020, 136
  • [40] Data hiding based compression mechanism for 3D models
    Li, Hui
    Agarwal, Parag
    Prabhakaran, Balakrishnan
    DCC 2007: DATA COMPRESSION CONFERENCE, PROCEEDINGS, 2007, : 391 - 391