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On comparing methods for discriminating between actually negative and actually positive subjects with FROC type data

机译:关于使用FROC类型数据区分实际阴性和实际阳性受试者的比较方法

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摘要

The task of searching and detecting multiple abnormalities depicted on an image, or a series of images, is a common problem in different areas such as military target detection or diagnostic medical imaging. A free response receiver operating characteristic (FROC) approach for assessing performance in many of these scenarios entails marking the locations of suspected abnormalities and indicating a level of suspicion at each of the marked locations. One of the important characteristics of a system being evaluated under the FROC paradigm is its performance in the conventional ROC domain, namely classifying a subject (or a unit of interest) as “negative” or “positive” in regard to the presence of the abnormality (or any of the abnormalities) of interest. With FROC data we can compare subjects by specifying a function of multiple scores within a subject. This approach allows formulating subject-based ROC type indices that can be estimated using existing ROC concepts. In this article we focus on indices that reflect the ability of the system to discriminate between actually negative and actually positive subjects. We consider a previously proposed index that is based on the comparison of the highest scores on subjects and two new indices that are based on potentially more stable comparison functions, namely comparison of average scores and stochastic dominance. Based on these indices we develop nonparametric procedures for comparing subject-based discriminative ability of diagnostic systems being evaluated under the FROC paradigm. We also investigate the properties of the statistical procedures in a simulation study.
机译:搜索和检测在一个图像或一系列图像上描绘的多个异常的任务是诸如军事目标检测或诊断医学成像之类的不同领域中的常见问题。在许多情况下,要使用自由响应接收器操作特征(FROC)方法来评估性能,需要标记可疑异常的位置并在每个标记的位置指示可疑程度。在FROC范式下评估的系统的重要特征之一是其在常规ROC域中的性能,即就异常的存在将受试者(或感兴趣的单元)分类为“阴性”或“阳性” (或任何异常)。利用FROC数据,我们可以通过指定一个主题内多个得分的函数来比较主题。这种方法允许制定可以使用现有ROC概念估算的基于主题的ROC类型索引。在本文中,我们将重点放在反映系统区分实际消极对象和实际积极对象的能力的指标上。我们考虑一个先前提出的指数,该指数基于对受试者的最高得分的比较,以及两个基于潜在更稳定的比较功能的新指数,即平均得分和随机优势的比较。基于这些指标,我们开发了非参数程序,用于比较在FROC范式下评估的诊断系统基于主题的判别能力。我们还将在模拟研究中调查统计程序的属性。

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