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A Novel Approach for Salt Dome Detection in Seismic Surveys using a Hidden Markov Model

机译:利用隐马尔可夫模型对地震调查中盐圆顶检测的一种新方法

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In this paper, we present a novel salt dome detection method using a Hidden Markov Model (HMM). The proposed algorithm combines the HMM with the Higher Order Singular Value Decomposition (HOSVD) based features to accurately delineate the salt boundaries in seismic data. The optimal parameters for the HMM are estimated using the Expectation-Maximization (EM) algorithm. By using the HOSVD based features, we ensure that the proposed algorithm overcomes the limitations of existing texture attributes based methods that are heavily dependent upon the relevance of attributes and the size of window used for extracting these attributes. We tested the proposed algorithm on the Netherlands offshore F3 block. Our algorithm, using a small feature set, produces excellent results as compared to the existing edge-based, texture-based, and the hybrid edge-texture based methods.
机译:在本文中,我们介绍了一种使用隐马尔可夫模型(HMM)的新型盐圆顶检测方法。所提出的算法将HMM与高阶奇异值分解(HosVD)的特征结合在一起,以精确描绘地震数据中的盐界。使用期望最大化(EM)算法估计HMM的最佳参数。通过使用基于HOSVD的功能,我们确保所提出的算法克服了基于现有纹理属性的限制,这些方法严重依赖于属性的相关性和用于提取这些属性的窗口大小。我们在荷兰近海F3块上测试了所提出的算法。我们使用小功能集的算法,与现有的基于边缘,纹理的基于纹理的方法相比,产生出色的结果。

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