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ROC curves and nonrandom data

机译:ROC曲线和非随机数据

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This paper shows that when a classifier is evaluated with nonrandom test data, ROC curves differ from the ROC curves that would be obtained with a random sample. To address this bias, this paper introduces a procedure for plotting ROC curves that are inferred from nonrandom test data. I provide simulations to illustrate the procedure as well as the magnitude of bias that is found in empirical ROC curves constructed with nonrandom test data. The paper also includes a demonstration of the procedure on (non-simulated) data used to model wine preferences in the wine industry. (C) 2016 Elsevier B.V. All rights reserved.
机译:本文显示,当使用非随机测试数据评估分类器时,ROC曲线不同于随机样本获得的ROC曲线。为了解决这种偏见,本文介绍了一种绘制从非随机测试数据推断出的ROC曲线的过程。我提供了仿真来说明该过程以及在使用非随机测试数据构建的经验ROC曲线中发现的偏差幅度。本文还演示了用于对葡萄酒行业中的葡萄酒偏好进行建模的(非模拟)数据的过程。 (C)2016 Elsevier B.V.保留所有权利。

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