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Categorical variables, interactions and generalized additive models. Applications in computer-aided diagnosis systems.

机译:分类变量,交互作用和广义加性模型。在计算机辅助诊断系统中的应用。

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摘要

Recently, the generalized additive models (GAMs) have been presented as a novel statistical approach to distinguish lesionon-lesion in computer-aided diagnosis (CAD) systems. In this paper, we present an extension of the GAM that allows for the introduction of factors and their interactions with continuous variables, for reducing false positives in a CAD system for detecting clustered microcalcifications in digital mammograms. The results obtained have shown an increase in the sensitivity from 83.12% to 85.71%, while the false positive rate was drastically reduced from 1.46 to 0.74 false detections per image.
机译:最近,广义加性模型(GAM)已被提出作为一种新颖的统计方法来区分计算机辅助诊断(CAD)系统中的病变/非病变。在本文中,我们提出了GAM的扩展,它允许引入因子及其与连续变量的相互作用,以减少CAD系统中检测数字乳房X线照片中的簇状微钙化的假阳性。所获得的结果表明,每幅图像的误检率从83.12%增至85.71%,而误报率从1.46大幅降低至0.74。

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