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3D ROC Analysis for Medical Imaging Diagnosis

机译:用于医学影像诊断的3D ROC分析

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Receiver operating characteristics (ROC) has been widely used as a performance evaluation tool to measure effectiveness of medical modalities. It is derived from a standard detection theory with false alarm and detection power interpreted as false positive (FP) and true positive (TP) respectively in terms of medical diagnosis. The ROC curve is plotted based on TP versus FP via hard decisions. This paper presents a three dimensional (3D) ROC analysis which extends the traditional two-dimensional (2D) ROC analysis by including a threshold parameter in a third dimension resulting from soft decisions, (SD). As a result, a 3D ROC curve can be plotted based on three parameters, TP, FP and SD. By virtue of such a 3D ROC curve three two-dimensional (2D) ROC curves can be derived, one of which is the traditional 2D ROC curve of TP versus FP with SD reduced to hard decision. In order to illustrate its utility in medical diagnosis, its application to magnetic resonance (MR) image classification is demonstrated
机译:接收器操作特征(ROC)已被广泛用作衡量医疗模式有效性的性能评估工具。它源自标准检测理论,其中误报和检测能力在医学诊断方面分别被解释为假阳性(FP)和真阳性(TP)。通过硬性决定,根据TP与FP绘制ROC曲线。本文提出了一种三维(3D)ROC分析,该方法通过在软决策(SD)产生的第三维中包含阈值参数,扩展了传统的二维(2D)ROC分析。结果,可以基于三个参数TP,FP和SD绘制3D ROC曲线。通过这种3D ROC曲线,可以得出三个二维(2D)ROC曲线,其中之一是TP与FP的传统2D ROC曲线,而SD则简化为硬决策。为了说明其在医学诊断中的效用,展示了其在磁共振(MR)图像分类中的应用

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