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Individualized treatment rule characterization via a value function surrogate.

Publication ,  Journal Article
Freeman, NLB; Browder, SE; McGinigle, KL; Kosorok, MR
Published in: Biometrics
January 29, 2024

Precision medicine is a promising framework for generating evidence to improve health and health care. Yet, a gap persists between the ever-growing number of statistical precision medicine strategies for evidence generation and implementation in real-world clinical settings, and the strategies for closing this gap will likely be context-dependent. In this paper, we consider the specific context of partial compliance to wound management among patients with peripheral artery disease. Using a Gaussian process surrogate for the value function, we show the feasibility of using Bayesian optimization to learn optimal individualized treatment rules. Further, we expand beyond the common precision medicine task of learning an optimal individualized treatment rule to the characterization of classes of individualized treatment rules and show how those findings can be translated into clinical contexts.

Duke Scholars

Published In

Biometrics

DOI

EISSN

1541-0420

Publication Date

January 29, 2024

Volume

80

Issue

1

Location

England

Related Subject Headings

  • Statistics & Probability
  • Precision Medicine
  • Humans
  • Bayes Theorem
  • 4905 Statistics
  • 0199 Other Mathematical Sciences
  • 0104 Statistics
 

Citation

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Chicago
ICMJE
MLA
NLM
Freeman, N. L. B., Browder, S. E., McGinigle, K. L., & Kosorok, M. R. (2024). Individualized treatment rule characterization via a value function surrogate. Biometrics, 80(1). https://doi.org/10.1093/biomtc/ujad012
Freeman, Nikki L. B., Sydney E. Browder, Katharine L. McGinigle, and Michael R. Kosorok. “Individualized treatment rule characterization via a value function surrogate.Biometrics 80, no. 1 (January 29, 2024). https://doi.org/10.1093/biomtc/ujad012.
Freeman NLB, Browder SE, McGinigle KL, Kosorok MR. Individualized treatment rule characterization via a value function surrogate. Biometrics. 2024 Jan 29;80(1).
Freeman, Nikki L. B., et al. “Individualized treatment rule characterization via a value function surrogate.Biometrics, vol. 80, no. 1, Jan. 2024. Pubmed, doi:10.1093/biomtc/ujad012.
Freeman NLB, Browder SE, McGinigle KL, Kosorok MR. Individualized treatment rule characterization via a value function surrogate. Biometrics. 2024 Jan 29;80(1).
Journal cover image

Published In

Biometrics

DOI

EISSN

1541-0420

Publication Date

January 29, 2024

Volume

80

Issue

1

Location

England

Related Subject Headings

  • Statistics & Probability
  • Precision Medicine
  • Humans
  • Bayes Theorem
  • 4905 Statistics
  • 0199 Other Mathematical Sciences
  • 0104 Statistics