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PROpwr: a Shiny R application to analyze patient-reported outcomes data and estimate power.
Hu, Jinxiang; Mei, Xiaohang; Pepper, Sam; Wang, Yu; Zhang, Bo; Cernik, Colin; Gajewski, Byron.
Afiliação
  • Hu J; Department of Biostatistics & Data Science, University of Kansas Medical Center, Kansas City, KS, USA.
  • Mei X; Department of Biostatistics & Data Science, University of Kansas Medical Center, Kansas City, KS, USA.
  • Pepper S; Department of Biostatistics & Data Science, University of Kansas Medical Center, Kansas City, KS, USA.
  • Wang Y; Biometrics, Bristol Myers Squibb, USA.
  • Zhang B; Food & Drug Administration, Division of Biometrics III, USA.
  • Cernik C; Department of Data Science, Dana-Farber Cancer Institute, USA.
  • Gajewski B; Department of Biostatistics & Data Science, University of Kansas Medical Center, Kansas City, KS, USA.
J Biopharm Stat ; : 1-12, 2024 Jun 13.
Article em En | MEDLINE | ID: mdl-38869267
ABSTRACT
Patient Reported Outcomes (PROs) are widely used in quality of life (QOL) studies, health outcomes research, and clinical trials. The importance of PRO has been advocated by health authorities. We propose this R shiny web application, PROpwr, that estimates power for two-arm clinical trials with PRO measures as endpoints using Item Response Theory (GRM Graded Response Model) and simulations. PROpwr also supports the analysis of PRO data for convenience of estimating the effect size. There are seven function tabs in PROpwr Frequentist Analysis, Bayesian Analysis, GRM power, T-test Power Given Sample Size, T-test Sample Size Given Power, Download, and References. PROpwr is user-friendly with point-and-click functions. PROpwr can assist researchers to analyze and calculate power and sample size for PRO endpoints in clinical trials without prior programming knowledge.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article