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Bayesian hierarchical rule modeling for predicting medical conditions

Publication ,  Journal Article
McCormick, TH; Rudin, C; Madigan, D
Published in: Annals of Applied Statistics
June 1, 2012

We propose a statistical modeling technique, called the Hierarchical Association Rule Model (HARM), that predicts a patient's possible future medical conditions given the patient's current and past history of reported conditions. The core of our technique is a Bayesian hierarchical model for selecting predictive association rules (such as "condition 1 and condition 2 → condition 3") from a large set of candidate rules. Because this method "borrows strength" using the conditions of many similar patients, it is able to provide predictions specialized to any given patient, even when little information about the patient's history of conditions is available. © Institute of Mathematical Statistics, 2012.

Duke Scholars

Published In

Annals of Applied Statistics

DOI

EISSN

1941-7330

ISSN

1932-6157

Publication Date

June 1, 2012

Volume

6

Issue

2

Start / End Page

652 / 668

Related Subject Headings

  • Statistics & Probability
  • 1403 Econometrics
  • 0104 Statistics
 

Citation

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MLA
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McCormick, T. H., Rudin, C., & Madigan, D. (2012). Bayesian hierarchical rule modeling for predicting medical conditions. Annals of Applied Statistics, 6(2), 652–668. https://doi.org/10.1214/11-AOAS522
McCormick, T. H., C. Rudin, and D. Madigan. “Bayesian hierarchical rule modeling for predicting medical conditions.” Annals of Applied Statistics 6, no. 2 (June 1, 2012): 652–68. https://doi.org/10.1214/11-AOAS522.
McCormick TH, Rudin C, Madigan D. Bayesian hierarchical rule modeling for predicting medical conditions. Annals of Applied Statistics. 2012 Jun 1;6(2):652–68.
McCormick, T. H., et al. “Bayesian hierarchical rule modeling for predicting medical conditions.” Annals of Applied Statistics, vol. 6, no. 2, June 2012, pp. 652–68. Scopus, doi:10.1214/11-AOAS522.
McCormick TH, Rudin C, Madigan D. Bayesian hierarchical rule modeling for predicting medical conditions. Annals of Applied Statistics. 2012 Jun 1;6(2):652–668.

Published In

Annals of Applied Statistics

DOI

EISSN

1941-7330

ISSN

1932-6157

Publication Date

June 1, 2012

Volume

6

Issue

2

Start / End Page

652 / 668

Related Subject Headings

  • Statistics & Probability
  • 1403 Econometrics
  • 0104 Statistics