DocumentCode :
3038516
Title :
A efficient and robust method for complexly faulted horizon reconstruction based on meshes cutting and interpolating
Author :
Li, Jigang ; Li, Yufeng ; Meng, Xianhai ; Yang, Qin
Author_Institution :
State Key Lab. of Software Dev. Environ., Beihang Univ., Beijing, China
Volume :
3
fYear :
2012
fDate :
25-27 May 2012
Firstpage :
396
Lastpage :
400
Abstract :
3d-geological modeling is a means of improving data interpretation through visualization, as well as a way to generate support for numerical simulations of complex phenomena. Reconstructing horizons from scattered point clouds is an omnipresent task in 3d-geological modeling. As the geometrical representation of faults network is not watertight in the process of modeling for the reason of efficiency, the reconstructed horizons cut by the fault network are often topological inconsistency. A robust and efficient method to reconstruct topologically and geometrically consistent horizons based on meshes cutting and Discrete Smooth Interpolation (DSI) is proposed to tackle this problem. By representing the faults network with both triangular and rectangular mesh, and under the guide of macro spatial topology, the initial continuous mesh of a horizon could be cut by the faults network efficiently and robustly. DSI is adopted to further adjust the non-manifold mesh of horizon to their proper position while keeping the topological contact relation unchanged. The result shows that the horizons reconstructed are consistent. It indicates that the method can solve the inconsistency of the horizons caused by the inconsistency of the faults network.
Keywords :
data visualisation; geophysics computing; interpolation; mesh generation; solid modelling; 3D-geological modeling; DSI; complexly faulted horizon reconstruction; data interpretation; data visualization; discrete smooth interpolation; fault network; geometrical representation; geometrically consistent horizon reconstruction; macrospatial topology; meshes cutting; nonmanifold mesh adjustment; numerical simulation; rectangular mesh; robust method; scattered point clouds; topological contact relation; topological inconsistency; topologically consistent horizon reconstruction; triangular mesh; Computational modeling; Educational institutions; Geology; Interpolation; Programming; Robustness; Surface reconstruction; geomodelling; horizon reconstruction; meshes cutting; non-manifold meshes; surface reconstruction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Science and Automation Engineering (CSAE), 2012 IEEE International Conference on
Conference_Location :
Zhangjiajie
Print_ISBN :
978-1-4673-0088-9
Type :
conf
DOI :
10.1109/CSAE.2012.6272980
Filename :
6272980
Link To Document :
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