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Published on: September 16, 2022
Empirical likelihood inference for area under the receiver operating characteristic curve using ranked set samples
Chul Moon1, Xinlei Wang1, Johan Lim2
1Department of Statistical Science, Southern Methodist University, Dallas, Texas, USA.
We introduce an empirical likelihood (EL) method for calculating confidence intervals for the area under the ROC curve (AUC) using ranked set sampling (RSS). This approach offers efficient AUC inference without requiring traditional assumptions, enhancing diagnostic test performance assessment.
Area of Science:
- Biostatistics
- Statistical Inference
- Diagnostic Test Evaluation
Background:
- The area under the receiver operating characteristic curve (AUC) is crucial for evaluating continuous diagnostic tests.
- Existing methods for AUC confidence intervals often require specific statistical assumptions.
- Ranked set sampling (RSS) offers enhanced data collection efficiency.
Purpose of the Study:
- To develop a novel empirical likelihood (EL) method for constructing confidence intervals for AUC.
- To leverage the efficiency of ranked set sampling (RSS) in AUC estimation.
- To provide assumption-free inference for AUC using EL and RSS.
Main Methods:
- An empirical likelihood (EL) method was developed for AUC confidence intervals.
- Data were collected using ranked set sampling (RSS) designs.
- The Mann-Whitney statistic was identified as the EL-based point estimate for AUC.
Main Results:
- The proposed EL method provides confidence intervals derived from a scaled chi-square distribution.
- Both balanced and unbalanced RSS data were accommodated by the method.
- Simulation studies and case studies demonstrated improved inference efficiency.
Conclusions:
- The EL-based method with RSS offers a statistically efficient approach for AUC inference.
- This method relaxes assumptions required by traditional non-parametric techniques.
- The approach is applicable to real-world diagnostic performance assessments, including diabetes and chronic kidney disease.
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