数据驱动内多重消除方法的分析与应用

Chao Ma, M. Guo, Zhaojun Liu, J. Sheng
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引用次数: 1

摘要

由强内倍数引起的成像伪影会干扰原始图像,影响结构解释和振幅分析。在这种情况下,内部倍数通常在数据域或图像域中衰减。本文研究了Jakubowicz、逆散射序列(ISS)和Marchenko三种数据驱动的内倍数去除方法,并分析了它们的性能。由于它们之间的差异,每种方法都有其独特的优势。这些知识反过来又可以帮助用户选择合适的方法。在分析之后,我们展示了这些方法在拖轮数据上的现场数据应用。
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Analysis and application of data-driven approaches for internal-multiple elimination
Imaging artifacts caused by strong internal multiples can interfere with primary images, affecting structural interpretation and amplitude analysis. In such cases, internal multiples are often attenuated in either data domain or in the image domain. In this abstract, we study three data-driven approaches: Jakubowicz, Inverse Scattering Series (ISS) and Marchenko for internal-multiple removal and analyze their performances. Each method has its unique advantages due to the differences among them. This knowledge, in turn, helps users to choose the appropriate method. Following the analysis, we show field data applications of these methods on towed steamer data.
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