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Experimental analysis and application of sparsity constrained deconvolution
Authors:Guo-Fa Li  De-Hai Qin  Geng-Xin Peng  Ying Yue  Tong-Li Zhai
Affiliation:1377. State Key Laboratory of Petroleum Resources and Prospecting (China University of Petroleum), Beijing, 102249, China
2377. Tarim Oil Field, PetroChina, Korla, 841000, China
3377. Dagang Oil Field, PetroChina, Tianjin, 300280, China
Abstract:Sparsity constrained deconvolution can improve the resolution of band-limited seismic data compared to conventional deconvolution. However, such deconvolution methods result in nonunique solutions and suppress weak reflections. The Cauchy function, modified Cauchy function, and Huber function are commonly used constraint criteria in sparse deconvolution. We used numerical experiments to analyze the ability of sparsity constrained deconvolution to restore reflectivity sequences and protect weak reflections under different constraint criteria. The experimental results demonstrate that the performance of sparsity constrained deconvolution depends on the agreement between the constraint criteria and the probability distribution of the reflectivity sequences; furthermore, the modified Cauchyconstrained criterion protects the weak reflections better than the other criteria. Based on the model experiments, the probability distribution of the reflectivity sequences of carbonate and clastic formations is statistically analyzed by using well-logging data and then the modified Cauchy-constrained deconvolution is applied to real seismic data much improving the resolution.
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