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DoG-Based Detection of Architectural Distortion in Mammographic Images for Computer-Aided Detection

机译:基于狗的乳房X线图中的架构失真检测,用于计算机辅助检测

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We propose a new method for accurate detection of architectural distortion that is a typical sign of breast cancer lesions in mammograms and necessary to be detected and diagnosed properly at an early stage for improvement of the survival rate of patients. An essential core of the proposed method is to efficiently extract a new general feature of the architectural distortions whose lesional intensities are not only higher than those of the surroundings as well known, but also often lower. While conventional features such as radial lines and higher intensities are difficult to be extracted and/or insufficient for accurate detection, the candidate area with such a new feature can be extracted accurately by using a difference of Gaussian (DoG)-based filter and after that a thresholding technique can reduce the number of false positives. The detection based on the new feature is expected to be more accurate than conventional ones because it reflects more general characteristics of the lesion. The experimental result using the database commonly tested worldwide shows that performance of the proposed method is superior to those of conventional ones.
机译:我们提出了一种新的方法,可以精确地检测建筑畸变,这是乳腺乳腺乳腺癌中乳腺癌病变的典型迹象,并且在早期阶段检测和诊断,以提高患者的存活率。所提出的方法的一个基本核心是有效地提取建筑扭曲的新一般特征,该建筑扭曲的一般特征是诸如已知的诸如周围环境的建筑扭曲的新一般特征,而且通常更低。虽然诸如径向线和更高强度的常规特征难以提取和/或不足以进行精确检测,但是通过使用基于高斯(狗)的滤波器的差异,可以准确地提取具有这种新特征的候选区域阈值化技术可以减少误报的数量。基于新特征的检测预计比传统的特征更准确,因为它反映了损伤的更一般特征。使用常见测试的数据库的实验结果表明,该方法的性能优于传统的方法。

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