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应用地球物理  2025, Vol. 22 Issue (1): 22-34    DOI: 10.1007/s11770-024-1129-0
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基于加权快速迭代收缩阈值算法的三维地震数据重建
张华*,邱达星,莫子奋,郝亚炬,武召祺, 戴梦雪
1.东华理工大学铀资源探采与核遥感全国重点实验室,南昌330013; 2.江西省地质局第六地质大队,南昌330095
3D Seismic Data Reconstruction based on Weighted Fast Iterative Shrinkage Thresholding algorithm
Zhang Hua*, Qiu Da-Xing, Mo Zi-Fen, Hao Ya-Ju, Wu Zhao-Qi, and Dai Meng-Xue
1. National Key Laboratory of Uranium Resources Exploration-Mining and Nuclear Remote Sensing, East China University of Technology, Nanchang, 330013, Jiangxi, China; 2. The Sixth Geological Brigade of Jiangxi Geological Bureau, 330095, Jiangxi, China.
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摘要 数据重建是地震数据预处理的关键步骤。为了提高重建速度和节省内存空间,常用的三维地震数据重建方法是将数据分成一系列时间切片,然后独立地重建每个时间切片。然而,在使用这种策略时,忽略了两个相邻切片之间潜在的相关性,降低了重建效果。为此,本文拟结合曲波变换,采用快速迭代收缩阈值算法,根据两个相邻时间切片的曲波系数支撑集之间具有很大的交集特点,在曲波域利用上一个已重建完成的时间切片提供的先验支撑集构建加权算子,圈定出主要能量分布范围,有效地为相邻待重建切片提供先验支持集信息,从而实现了基于加权快速迭代收缩阈值算法的三维地震数据重建。理论和实际数据的处理表明,相比传统快速迭代收缩阈值算法,本文提出的方法重建精度更高,计算速度更快。
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关键词数据重建   快速迭代收缩阈值   先验支撑集   加权算子     
Abstract: Data reconstruction is a crucial step in seismic data preprocessing. To improve reconstruction speed and save memory, the commonly used three-dimensional (3D) seismic data reconstruction method divides the missing data into a series of time slices and independently reconstructs each time slice. However, when this strategy is employed, the potential correlations between two adjacent time slices are ignored, which degrades reconstruction performance. Therefore, this study proposes the use of a two-dimensional curvelet transform and the fast iterative shrinkage thresholding algorithm for data reconstruction. Based on the significant overlapping characteristics between the curvelet coefficient support sets of two adjacent time slices, a weighted operator is constructed in the curvelet domain using the prior support set provided by the previous reconstructed time slice to delineate the main energy distribution range, effectively providing prior information for reconstructing adjacent slices. Consequently, the resulting weighted fast iterative shrinkage thresholding algorithm can be used to reconstruct 3D seismic data. The processing of synthetic and fi eld data shows that the proposed method has higher reconstruction accuracy and faster computational speed than the conventional fast iterative shrinkage thresholding algorithm for handling missing 3D seismic data.
Key wordsdata reconstruction   fast iterative shrinkage thresholding   prior support set   weighted operator   
收稿日期: 2024-05-14;
基金资助:国家自然科学基金(42304145,41874126)和江西省自然科学基金(20232BAB213077)联合资助。
通讯作者: 张华(E-mail: zhhua1979@163.com)      E-mail: zhhua1979@163.com
作者简介: 张华( 1979- ),男,江西宜春,博士,教授,研究方向为数据重建及规则化反演. E-mail: zhhua1979@163.com
引用本文:   
. 基于加权快速迭代收缩阈值算法的三维地震数据重建[J]. 应用地球物理, 2025, 22(1): 22-34.
. 3D Seismic Data Reconstruction based on Weighted Fast Iterative Shrinkage Thresholding algorithm[J]. APPLIED GEOPHYSICS, 2025, 22(1): 22-34.
 
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[1] 张华,陈小宏,张落毅. 基于曲波变换的三维地震数据同时重建和噪声压制[J]. 应用地球物理, 2017, 14(1): 87-95.
[2] 张华, 陈小宏, 吴信民. 基于压缩感知理论与傅立叶变换的地震数据重建[J]. 应用地球物理, 2013, 10(2): 170-180.
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