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Caving Depth Classification by Feature Extraction in Cuttings Images

机译:岩屑图像中特征提取的崩落深度分类

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The estimation of caving depth is of particular interest in the oil industry. During the drilling process, the rock classification problem is studied to analyze the concentration of cuttings at the vibrating shale shakers through the classification of caving images. To date, depth estimation based on caving rock images has not been treated in the literature. This paper presents a new depth caving estimation system based on the classification of caving images through feature extraction. To extract the texture descriptors, the cutting images are first mapped on a common space where they can be easily compared. Then, textural features are obtained by applying a multi-scale and multi-orientation approach through the use of Gabor transformations. Two different depth classifiers are developed; the first separates the textural features by using a soft decision based on the Euclidean distance, and the second performs a hard decision classification by applying a thresholding procedure. A detailed mathematical formulation of the developed classifiers is presented. The developed estimation system is verified using real data from rock cutting images in petroleum wells. Several simulations illustrate the performance of the proposed model using real images from a wellbore in a Colombian basin. The correct classification rate of a database containing 17 depth estimates is 91.2%.
机译:崩落深度的估计在石油工业中特别重要。在钻探过程中,研究了岩石分类问题,通过对崩塌图像进行分类来分析振动页岩振动筛上钻屑的浓度。迄今为止,文献中尚未处理基于崩落岩石图像的深度估计。本文提出了一种基于特征提取的崩落图像分类的深度崩塌估算系统。为了提取纹理描述符,首先将切割图像映射到一个可以轻松比较的公共空间。然后,通过使用Gabor变换应用多尺度和多方向方法来获得纹理特征。开发了两种不同的深度分类器;第一个通过使用基于欧几里得距离的软判决来分离纹理特征,第二个通过应用阈值过程执行硬判决分类。介绍了开发的分类器的详细数学公式。使用石油井中岩石切割图像的真实数据验证了开发的估算系统。若干模拟使用哥伦比亚盆地井眼中的真实图像说明了所提出模型的性能。包含17个深度估计的数据库的正确分类率为91.2%。

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