Deblending by modified dictionary learning using Sparse Parameter Training

被引:0
|
作者
Evinemi E Isaac [1 ,2 ]
MAO Weijian [1 ]
CHENG Shijun [1 ,2 ]
机构
[1] Research Center for Computational and Exploration Geophysics, State Key Laboratory of Geodesy and Earth's Dynamics, Innovation Academy for Precision Measurement Science and Technology, CAS
[2] University of Chinese Academy of Sciences
基金
中国国家自然科学基金;
关键词
D O I
暂无
中图分类号
P631.4 [地震勘探];
学科分类号
0818 ; 081801 ; 081802 ;
摘要
Considerable attempts have been made on removing the crosstalk noise in a simultaneous source data using the popular K-means Singular Value Decomposition algorithm(KSVD). Several hybrids of this method have been designed and successfully deployed, but the complex nature of blending noise makes it difficult to manipulate easily. One of the challenges of the K-means Singular Value Decomposition approach is the challenge to obtain an exact KSVD for each data patch which is believed to result in a better output. In this work, we propose a learnable architecture capable of data training while retaining the K-means Singular Value Decomposition essence to deblend simultaneous source data.
引用
收藏
页码:226 / 238
页数:13
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