中文版 | English
Title

Implementation of efficient low-storage techniques for 3-D seismic simulation using the curved grid finite-difference method

Author
Corresponding AuthorZhang,Zhenguo
Publication Years
2023-09-01
DOI
Source Title
ISSN
0956-540X
EISSN
1365-246X
Volume234Issue:3Pages:2214-2230
Abstract

High-resolution 3-D seismic simulation imposes severe demands for computational memory, making low-storage seismic simulation particularly important. Due to its high-efficiency and low-storage, the half-precision floating-point 16-bit format (FP16) is widely used in heterogeneous computing platforms, such as Sunway series supercomputers and graphics processing unit (GPU) computing platforms. Furthermore, the low-storage Runge–Kutta (LSRK) technique requires lower memory resources compared with the classical Runge–Kutta. Therefore, FP16 and LSRK provide the possibility for low-storage seismic simulation. However, the orders of magnitude of the physical quantities (velocity, stress and Lamé constants) in the elastic wave equations are influenced by the P-wave and S-wave velocities and the densities of the elastic media. This results in a huge order of magnitude difference between the stored velocity and stress values, which exceed the range of the stored values of FP16. In this paper, we introduce three dimensionless constants, C, C and C, into elastic wave equations, and new elastic wave equations are derived. The three constants, C, C and C, keep the orders of magnitude of the velocity and stress at a similar level in the new elastic wave equations. Thus, the stored values of these variables in new equations remain within the range of the stored values of FP16. In addition, we introduce the use of the LSRK due to its low-storage characteristic. In this paper, based on the FP16 and LSRK low-storage techniques, we develop 3 optimized multi-GPU solvers for seismic simulation using the curved grid finite-difference method (CGFDM). Moreover, we perform a series of seismic simulations to verify the accuracy, stability, and validity of the optimized solver coupled with the two techniques. The verifications indicate that through maintaining the calculation accuracy, the computational efficiency of the solver is significantly optimized, and the memory usage is remarkably reduced. In particular, under the best conditions, the memory usage can be reduced to nearly 1/3 that of the original CGFDM solver.

Keywords
URL[Source Record]
Indexed By
Language
English
SUSTech Authorship
First ; Corresponding
Funding Project
National Key R&D Program of China[2020YFB0204700] ; national natural science foundation of china[42174057] ; Guangdong Provincial Key Laboratory of Geophysical High-resolution Imaging Technology[2022B1212010002] ; Shenzhen Science and Technology Program[KQTD20170810111725321]
WOS Research Area
Geochemistry & Geophysics
WOS Subject
Geochemistry & Geophysics
WOS Accession No
WOS:000995030800004
Publisher
ESI Research Field
GEOSCIENCES
Scopus EID
2-s2.0-85160744968
Data Source
Scopus
Citation statistics
Cited Times [WOS]:0
Document TypeJournal Article
Identifierhttp://kc.sustech.edu.cn/handle/2SGJ60CL/559698
DepartmentDepartment of Earth and Space Sciences
Affiliation
1.Department of Earth and Space Sciences,Southern University of Science and Technology,Shenzhen,518055,China
2.Guangdong Provincial Key Laboratory of Geophysical High-resolution Imaging Technology,Southern University of Science and Technology,Shenzhen,518055,China
3.Department of Earth and Planetary Sciences,McGill University,Montreal,H3A0G4,Canada
4.School of Earth and Space Sciences,University of Science and Technology of China,Hefei,230052,China
First Author AffilicationDepartment of Earth and Space Sciences
Corresponding Author AffilicationDepartment of Earth and Space Sciences;  Southern University of Science and Technology
First Author's First AffilicationDepartment of Earth and Space Sciences
Recommended Citation
GB/T 7714
Wang,Wenqiang,Zhang,Zhenguo,Zhang,Wenqiang,et al. Implementation of efficient low-storage techniques for 3-D seismic simulation using the curved grid finite-difference method[J]. Geophysical Journal International,2023,234(3):2214-2230.
APA
Wang,Wenqiang,Zhang,Zhenguo,Zhang,Wenqiang,&Liu,Qi.(2023).Implementation of efficient low-storage techniques for 3-D seismic simulation using the curved grid finite-difference method.Geophysical Journal International,234(3),2214-2230.
MLA
Wang,Wenqiang,et al."Implementation of efficient low-storage techniques for 3-D seismic simulation using the curved grid finite-difference method".Geophysical Journal International 234.3(2023):2214-2230.
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