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Fractal analysis for computer-aided diagnosis of diffuse pulmonary diseases in HRCT images

机译:计算机辅助诊断HRCT图像弥漫性肺疾病的分形分析

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The purpose of this article is to propose the use of fractal and texture analysis for computer-aided diagnosis (CAD) of diffuse pulmonary diseases (DPDs) in high-resolution computed tomography (HRCT) images. We propose multiple techniques to extract features from preprocessed regions of interest (ROIs) selected to represent five radiographic patterns useful in the differential diagnosis of DPDs, as well as normal cases. First-order statistics of gray-level distribution, Haralick's and Laws' texture features, statistical information extracted from the ROIs' discrete Fourier transforms, and their fractal dimension values were used as attributes. The features were used as inputs for a k-nearest neighbor classifier (k=5). With a dataset of 3252 ROIs, correct classification rates of up to 82.62% were achieved.
机译:本文的目的是提出在高分辨率计算断层扫描(HRCT)图像中的弥漫性肺疾病(DPD)的计算机辅助诊断(CAD)的分形和质地分析。我们提出了多种技术来提取从预处理的感兴趣区域(ROI)的特征(ROI)来表示用于DPD的差异诊断的五种射线照相模式,以及正常情况。一阶统计灰度分布,haralick和法律'纹理特征,从rois'离散傅里叶变换中提取的统计信息,以及它们的分形尺寸值​​用作属性。该特征被用作k - 最近邻分类的输入(k = 5)。使用3252 ROI的数据集,实现了高达82.62%的正确分类率。

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