• Medientyp: E-Artikel
  • Titel: Combining longitudinal discriminant analysis and partial area under the ROC curve to predict non-response to treatment for hepatitis C virus
  • Beteiligte: Lukasiewicz, Esther; Gorfine, Malka; Neumann, Avidan U; Freedman, Laurence S
  • Erschienen: SAGE Publications, 2011
  • Erschienen in: Statistical Methods in Medical Research, 20 (2011) 3, Seite 275-289
  • Sprache: Englisch
  • DOI: 10.1177/0962280209341624
  • ISSN: 0962-2802; 1477-0334
  • Schlagwörter: Health Information Management ; Statistics and Probability ; Epidemiology
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  • Beschreibung: A longitudinal discriminant analysis is applied to build predictive models based on repeated measurements of serum hepatitis C virus RNA. These models are evaluated through the partial area under the receiver operating curve index (PA index) and, the final selection of the best model is based on cross-validated estimates of the PA index. Models are compared by building 95% bootstrap confidence interval for the difference in PA index between two models. Data from a randomised trial, in which chronic HCV patients were enrolled, are used to illustrate the application of the proposed method to predict treatment outcome.