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UNSUPERVISED SEGMENTATION OF 3D AND 2D SEISMEC REFLECTION DATA

机译:3D和2D SEISMEC反射数据的未监督分段

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An unsuperivsed method to extract 2D and 3D inner earth structures from seismic reflection measurements is described. The application is a typical texture segmentation problem, which can be split up into a feature extraction stage and a segmentation stage. As a texture feature, the locally emergent frequency is estimated by a Gabor filter bank. The instantaneous frequency (IF) has already been successfully used for seismic trace analysis ~21 and will be compared with the results of the filter bank. The second stage of the algorithm involves a region-growing method to compute the final object structure. The extremely flexible segmentation scheme is appropriate for application to 2D and 3D images of arbitrary vectorial dimension. The merging decision is based on the mutual inlier ratio of two adjacent regions. This ratio is computed by robust regression techniques to avoid noise artifacts. A mutual inlier ratio discrimination function to recognize identical Gaussian distributions, guaranteeing a 97.5/100 certainty, is derived. This method is compared with the Kolmogorov-Smironov test and results of the application in a segmentation algorithm are shown. The segmentation stage is also tested with different benchmark data sets from other computer vision problems to demonstrate its general flexibility.
机译:描述了一种从地震反射测量中提取2D和3D内部地球结构的无监督方法。该应用程序是一个典型的纹理分割问题,可以分为特征提取阶段和分割阶段。作为纹理特征,局部出现频率由Gabor滤波器组估算。瞬时频率(IF)已被成功地用于地震道分析〜21,并将与滤波器组的结果进行比较。该算法的第二阶段涉及一种区域增长方法,以计算最终的对象结构。极其灵活的分割方案适用于任意矢量尺寸的2D和3D图像。合并决策基于两个相邻区域的互斥比率。该比率是通过鲁棒的回归技术来计算的,以避免产生噪声。推导了一个互斥系数鉴别函数,该函数可识别相同的高斯分布,从而确保97.5 / 100的确定性。将该方法与Kolmogorov-Smironov检验进行了比较,并显示了在分割算法中的应用结果。还使用来自其他计算机视觉问题的不同基准数据集对细分阶段进行了测试,以证明其总体灵活性。

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