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Regularized least-squares migration of simultaneous-source seismic data with adaptive singular spectrum analysis 被引量:12

Regularized least-squares migration of simultaneous-source seismic data with adaptive singular spectrum analysis
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摘要 Simultaneous-source acquisition has been recog- nized as an economic and efficient acquisition method, but the direct imaging of the simultaneous-source data produces migration artifacts because of the interference of adjacent sources. To overcome this problem, we propose the regularized least-squares reverse time migration method (RLSRTM) using the singular spectrum analysis technique that imposes sparseness constraints on the inverted model. Additionally, the difference spectrum theory of singular values is presented so that RLSRTM can be implemented adaptively to eliminate the migration artifacts. With numerical tests on a fiat layer model and a Marmousi model, we validate the superior imaging quality, efficiency and convergence of RLSRTM compared with LSRTM when dealing with simultaneoussource data, incomplete data and noisy data. Simultaneous-source acquisition has been recog- nized as an economic and efficient acquisition method, but the direct imaging of the simultaneous-source data produces migration artifacts because of the interference of adjacent sources. To overcome this problem, we propose the regularized least-squares reverse time migration method (RLSRTM) using the singular spectrum analysis technique that imposes sparseness constraints on the inverted model. Additionally, the difference spectrum theory of singular values is presented so that RLSRTM can be implemented adaptively to eliminate the migration artifacts. With numerical tests on a fiat layer model and a Marmousi model, we validate the superior imaging quality, efficiency and convergence of RLSRTM compared with LSRTM when dealing with simultaneoussource data, incomplete data and noisy data.
出处 《Petroleum Science》 SCIE CAS CSCD 2017年第1期61-74,共14页 石油科学(英文版)
基金 financial support from the National Natural Science Foundation of China (Grant Nos. 41104069, 41274124) National Key Basic Research Program of China (973 Program) (Grant No. 2014CB239006) National Science and Technology Major Project (Grant No. 2011ZX05014-001-008) the Open Foundation of SINOPEC Key Laboratory of Geophysics (Grant No. 33550006-15-FW2099-0033) the Fundamental Research Funds for the Central Universities (Grant No. 16CX06046A)
关键词 Least-squares migration Adaptive singularspectrum analysis Regularization Blended data Least-squares migration Adaptive singularspectrum analysis Regularization Blended data
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