نتایج جستجو برای: auc

تعداد نتایج: 18876  

2015
Bernard Rosner Shelley Tworoger Weiliang Qiu

Diagnostic biomarkers are used frequently in epidemiologic and clinical work. The ability of a diagnostic biomarker to discriminate between subjects who develop disease (cases) and subjects who do not (controls) is often measured by the area under the receiver operating characteristic curve (AUC). The diagnostic biomarkers are usually measured with error. Ignoring measurement error can cause bi...

2007
Toon Calders Szymon Jaroszewicz

In this paper we show an efficient method for inducing classifiers that directly optimize the area under the ROC curve. Recently, AUC gained importance in the classification community as a mean to compare the performance of classifiers. Because most classification methods do not optimize this measure directly, several classification learning methods are emerging that directly optimize the AUC. ...

Journal: :CoRR 2015
Charanpal Dhanjal Romaric Gaudel Stéphan Clémençon

In recommendation systems, one is interested in the ranking of the predicted items as opposed to other losses such as the mean squared error. Although a variety of ways to evaluate rankings exist in the literature, here we focus on the Area Under the ROC Curve (AUC) as it widely used and has a strong theoretical underpinning. In practical recommendation, only items at the top of the ranked list...

Journal: :CoRR 2017
Majdi Khalid Indrakshi Ray Hamidreza Chitsaz

The area under the ROC curve (AUC) is a measure of interest in various machine learning and data mining applications. It has been widely used to evaluate classification performance on heavily imbalanced data. The kernelized AUC maximization machines have established a superior generalization ability compared to linear AUC machines because of their capability in modeling the complex nonlinear st...

Journal: :Practica Oto-Rhino-Laryngologica 1996

Journal: :Proceedings of the ... AAAI Conference on Artificial Intelligence 2023

The Area Under the ROC Curve (AUC) is an important model metric for evaluating binary classifiers, and many algorithms have been proposed to optimize AUC approximately. It raises question of whether generally insignificant gains observed by previous studies are due inherent limitations or inadequate quality optimization. To better understand value optimizing AUC, we present efficient algorithm,...

2011
Peter Flach José Hernández-Orallo Cèsar Ferri

The area under the ROC curve (AUC) is a well-known measure of ranking performance, and is also often used as a measure of classification performance, aggregating over decision thresholds as well as class and cost skews. However, David Hand has recently argued that AUC is fundamentally incoherent as a measure of aggregated classifier performance and proposed an alternative measure [5]. Specifica...

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