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Deformation Robust Texture Features for Polyp Classification via CT Colonography

机译:通过CT结肠造影对息肉进行分类的变形稳健纹理特征

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In this article, we introduce a deformation independent model to solve the shape and posture changing issue for polyp characterization in computer-aided diagnosis (CAD.x) via CT colonography. After volumetric data parameterization in a four-dimensional space, the first fundamental form (FFF) is employed to construct the polyp model which contains several excellent properties such as locality, symmetry, orientation robustness, shift and isometric invariance. In consideration of the scaling effects, gray level co-occurrence matrix (GLCM) is utilized to remove the scaling factor and extract texture descriptors. As a symmetrical square tensor, however, it is difficult to put the FFF into GLCM directly. To solve this problem, we perform matrix decomposition on FFF to extract its eigenvalues and eigenvectors which are used to construct three metric images as the input of GLCM. Then Haralick measures extracted from GLCM are applied to construct texture descriptors which are fed to a random forest classifier to perform polyp classification. Experiments show that the proposed method obtains an encouraging classification performance with area under the curve of receiver operating characteristics (AUC score) of 95.3% which is a significant improvement comparing with five existing methods.
机译:在本文中,我们介绍了一种不依赖于变形的模型,以解决形状和姿势变化的问题,以便通过CT结肠造影对计算机辅助诊断(CAD.x)中的息肉进行表征。在三维空间中对体积数据进行参数化之后,采用第一基本形式(FFF)构造息肉模型,该息肉模型包含多个出色的属性,例如局部性,对称性,方向稳健性,位移和等距不变性。考虑到缩放效果,利用灰度共生矩阵(GLCM)去除缩放因子并提取纹理描述符。但是,作为对称的方形张量,很难将FFF直接放入GLCM。为了解决这个问题,我们对FFF进行矩阵分解以提取其特征值和特征向量,以构造三个度量图像作为GLCM的输入。然后,将从GLCM中提取的Haralick度量应用于构造纹理描述符,该纹理描述符被馈送到随机森林分类器以执行息肉分类。实验表明,该方法在接收器工作特性曲线下的面积(AUC得分)为95.3%,具有令人鼓舞的分类性能,与现有的5种方法相比,具有明显的改进。

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