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Seismic anomaly detection using double-windowed statistical analysis

机译:使用双窗口统计分析的地震异常检测

摘要

Method for identifying geologic features from seismic data (11) using seismic anomaly detection by a double-windowed statistical analysis. Subtle features that may be obscured using a single window on the data are made identifiable using two moving windows of user-selected size and shape: a pattern window located within a sampling window larger than the pattern window (12). If Gaussian statistics are assumed, the statistical analysis may be performed by computing mean and covariance matrices for the data within the pattern window in its various positions within the sampling window (13). Then a specific measure of degree of anomaly for each voxel such as a residue value may be computed for each sampling window using its own mean and covariance matrix (14), and finally the resulting residue volume may be analyzed, with or without thresholding, for physical features indicative of hydrocarbon potential (15).
机译:通过双窗统计分析利用地震异常检测从地震数据( 11 )中识别地质特征的方法。使用两个用户选择的大小和形状的移动窗口,可以识别使用单个窗口遮盖的微妙特征:位于采样窗口中的图案窗口大于图案窗口( 12 )。如果采用高斯统计,则可以通过计算模式窗口内数据在采样窗口( 13 )中各个位置的均值和协方差矩阵来进行统计分析。然后可以使用其自身的均值和协方差矩阵( 14 )为每个采样窗口计算每个体素的异常程度的特定度量,例如残差值,最后可以分析所得的残渣量,无论是否具有阈值,均应指示烃潜力( 15 )的物理特征。

著录项

  • 公开/公告号US9261615B2

    专利类型

  • 公开/公告日2016-02-16

    原文格式PDF

  • 申请/专利权人 KRISHNAN KUMARAN;

    申请/专利号US201313860313

  • 发明设计人 KRISHNAN KUMARAN;

    申请日2013-04-10

  • 分类号G01V1/30;G01V1/00;

  • 国家 US

  • 入库时间 2022-08-21 14:31:10

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