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A novel approach to assess dynamic treatment regimes embedded in a SMART with an ordinal outcome.

Publication ,  Journal Article
Ghosh, P; Yan, X; Chakraborty, B
Published in: Stat Med
March 30, 2023

Sequential multiple assignment randomized trials (SMARTs) are used to construct data-driven optimal intervention strategies for subjects based on their intervention and covariate histories in different branches of health and behavioral sciences where a sequence of interventions is given to a participant. Sequential intervention strategies are often called dynamic treatment regimes (DTR). In the existing literature, the majority of the analysis methodologies for SMART data assume a continuous primary outcome. However, ordinal outcomes are also quite common in clinical practice. In this work, first, we introduce the notion of generalized odds ratio ( G O R $$ GOR $$ ) to compare two DTRs embedded in a SMART with an ordinal outcome and discuss some combinatorial properties of this measure. Next, we propose a likelihood-based approach to estimate G O R $$ GOR $$ from SMART data, and derive the asymptotic properties of its estimate. We discuss alternative ways to estimate G O R $$ GOR $$ using concordant-discordant pairs and two-sample U $$ U $$ -statistic. We derive the required sample size formula for designing SMARTs with ordinal outcomes based on G O R $$ GOR $$ . A simulation study shows the performance of the estimated G O R $$ GOR $$ in terms of the estimated power corresponding to the derived sample size. The methodology is applied to analyze data from the SMART+ study, conducted in the UK, to improve carbohydrate periodization behavior in athletes using a menu planner mobile application, Hexis Performance. A freely available Shiny web app using R is provided to make the proposed methodology accessible to other researchers and practitioners.

Duke Scholars

Published In

Stat Med

DOI

EISSN

1097-0258

Publication Date

March 30, 2023

Volume

42

Issue

7

Start / End Page

1096 / 1111

Location

England

Related Subject Headings

  • Statistics & Probability
  • Sample Size
  • Likelihood Functions
  • Humans
  • Computer Simulation
  • 4905 Statistics
  • 4202 Epidemiology
  • 1117 Public Health and Health Services
  • 0104 Statistics
 

Citation

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Ghosh, P., Yan, X., & Chakraborty, B. (2023). A novel approach to assess dynamic treatment regimes embedded in a SMART with an ordinal outcome. Stat Med, 42(7), 1096–1111. https://doi.org/10.1002/sim.9659
Ghosh, Palash, Xiaoxi Yan, and Bibhas Chakraborty. “A novel approach to assess dynamic treatment regimes embedded in a SMART with an ordinal outcome.Stat Med 42, no. 7 (March 30, 2023): 1096–1111. https://doi.org/10.1002/sim.9659.
Ghosh P, Yan X, Chakraborty B. A novel approach to assess dynamic treatment regimes embedded in a SMART with an ordinal outcome. Stat Med. 2023 Mar 30;42(7):1096–111.
Ghosh, Palash, et al. “A novel approach to assess dynamic treatment regimes embedded in a SMART with an ordinal outcome.Stat Med, vol. 42, no. 7, Mar. 2023, pp. 1096–111. Pubmed, doi:10.1002/sim.9659.
Ghosh P, Yan X, Chakraborty B. A novel approach to assess dynamic treatment regimes embedded in a SMART with an ordinal outcome. Stat Med. 2023 Mar 30;42(7):1096–1111.
Journal cover image

Published In

Stat Med

DOI

EISSN

1097-0258

Publication Date

March 30, 2023

Volume

42

Issue

7

Start / End Page

1096 / 1111

Location

England

Related Subject Headings

  • Statistics & Probability
  • Sample Size
  • Likelihood Functions
  • Humans
  • Computer Simulation
  • 4905 Statistics
  • 4202 Epidemiology
  • 1117 Public Health and Health Services
  • 0104 Statistics