ROC Estimation from Clustered Data with an Application to Liver Cancer Data

Author:

Kim Joungyoun1,Yun Sung-Cheol2,Lim Johan3,Lee Moo-Song2,Son Won3,Park Dohwan4

Affiliation:

1. Department of Information Statistics, Chungbuk National University, Cheongju, Republic of Korea.

2. Department of Clinical Epidemiology and Biostatistics, Asan Medical Center, University of Ulsan College of Medicine, Seoul, Republic of Korea.

3. Department of Statistics, Seoul National University, Seoul, Republic of Korea.

4. Department of Mathematics and Statistics, University of Maryland, Baltimore County, Baltimore, MD, USA.

Abstract

In this article, we propose a regression model to compare the performances of different diagnostic methods having clustered ordinal test outcomes. The proposed model treats ordinal test outcomes (an ordinal categorical variable) as grouped-survival time data and uses random effects to explain correlation among outcomes from the same cluster. To compare different diagnostic methods, we introduce a set of covariates indicating diagnostic methods and compare their coefficients. We find that the proposed model defines a Lehmann family and can also introduce a location-scale family of a receiver operating characteristic (ROC) curve. The proposed model can easily be estimated using standard statistical software such as SAS and SPSS. We illustrate its practical usefulness by applying it to testing different magnetic resonance imaging (MRI) methods to detect abnormal lesions in a liver.

Publisher

SAGE Publications

Subject

Cancer Research,Oncology

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