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Modeling recovery curves with application to prostatectomy.

Publication ,  Journal Article
Wang, F; Rudin, C; Mccormick, TH; Gore, JL
Published in: Biostatistics (Oxford, England)
October 2019

In many clinical settings, a patient outcome takes the form of a scalar time series with a recovery curve shape, which is characterized by a sharp drop due to a disruptive event (e.g., surgery) and subsequent monotonic smooth rise towards an asymptotic level not exceeding the pre-event value. We propose a Bayesian model that predicts recovery curves based on information available before the disruptive event. A recovery curve of interest is the quantified sexual function of prostate cancer patients after prostatectomy surgery. We illustrate the utility of our model as a pre-treatment medical decision aid, producing personalized predictions that are both interpretable and accurate. We uncover covariate relationships that agree with and supplement that in existing medical literature.

Duke Scholars

Published In

Biostatistics (Oxford, England)

DOI

EISSN

1468-4357

ISSN

1465-4644

Publication Date

October 2019

Volume

20

Issue

4

Start / End Page

549 / 564

Related Subject Headings

  • Statistics & Probability
  • Prostatectomy
  • Outcome Assessment, Health Care
  • Models, Statistical
  • Middle Aged
  • Male
  • Humans
  • Decision Support Techniques
  • Bayes Theorem
  • Aged
 

Citation

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Wang, F., Rudin, C., Mccormick, T. H., & Gore, J. L. (2019). Modeling recovery curves with application to prostatectomy. Biostatistics (Oxford, England), 20(4), 549–564. https://doi.org/10.1093/biostatistics/kxy002
Wang, Fulton, Cynthia Rudin, Tyler H. Mccormick, and John L. Gore. “Modeling recovery curves with application to prostatectomy.Biostatistics (Oxford, England) 20, no. 4 (October 2019): 549–64. https://doi.org/10.1093/biostatistics/kxy002.
Wang F, Rudin C, Mccormick TH, Gore JL. Modeling recovery curves with application to prostatectomy. Biostatistics (Oxford, England). 2019 Oct;20(4):549–64.
Wang, Fulton, et al. “Modeling recovery curves with application to prostatectomy.Biostatistics (Oxford, England), vol. 20, no. 4, Oct. 2019, pp. 549–64. Epmc, doi:10.1093/biostatistics/kxy002.
Wang F, Rudin C, Mccormick TH, Gore JL. Modeling recovery curves with application to prostatectomy. Biostatistics (Oxford, England). 2019 Oct;20(4):549–564.
Journal cover image

Published In

Biostatistics (Oxford, England)

DOI

EISSN

1468-4357

ISSN

1465-4644

Publication Date

October 2019

Volume

20

Issue

4

Start / End Page

549 / 564

Related Subject Headings

  • Statistics & Probability
  • Prostatectomy
  • Outcome Assessment, Health Care
  • Models, Statistical
  • Middle Aged
  • Male
  • Humans
  • Decision Support Techniques
  • Bayes Theorem
  • Aged