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Bayesian model selection for join point regression with application to age‐adjusted cancer rates

Author

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  • Ram C. Tiwari
  • Kathleen A. Cronin
  • William Davis
  • Eric J. Feuer
  • Binbing Yu
  • Siddhartha Chib

Abstract

Summary. The method of Bayesian model selection for join point regression models is developed. Given a set of K+1 join point models M0, M1, …, MK with 0, 1, …, K join points respec‐tively, the posterior distributions of the parameters and competing models Mk are computed by Markov chain Monte Carlo simulations. The Bayes information criterion BIC is used to select the model Mk with the smallest value of BIC as the best model. Another approach based on the Bayes factor selects the model Mk with the largest posterior probability as the best model when the prior distribution of Mk is discrete uniform. Both methods are applied to analyse the observed US cancer incidence rates for some selected cancer sites. The graphs of the join point models fitted to the data are produced by using the methods proposed and compared with the method of Kim and co‐workers that is based on a series of permutation tests. The analyses show that the Bayes factor is sensitive to the prior specification of the variance σ2, and that the model which is selected by BIC fits the data as well as the model that is selected by the permutation test and has the advantage of producing the posterior distribution for the join points. The Bayesian join point model and model selection method that are presented here will be integrated in the National Cancer Institute's join point software (http://www.srab.cancer.gov/joinpoint/) and will be available to the public.

Suggested Citation

  • Ram C. Tiwari & Kathleen A. Cronin & William Davis & Eric J. Feuer & Binbing Yu & Siddhartha Chib, 2005. "Bayesian model selection for join point regression with application to age‐adjusted cancer rates," Journal of the Royal Statistical Society Series C, Royal Statistical Society, vol. 54(5), pages 919-939, November.
  • Handle: RePEc:bla:jorssc:v:54:y:2005:i:5:p:919-939
    DOI: 10.1111/j.1467-9876.2005.00518.x
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    Citations

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    Cited by:

    1. Binbing Yu & Lan Huang & Ram C. Tiwari & Eric J. Feuer & Karen A. Johnson, 2009. "Modelling population‐based cancer survival trends by using join point models for grouped survival data," Journal of the Royal Statistical Society Series A, Royal Statistical Society, vol. 172(2), pages 405-425, April.
    2. Chen, Cathy W.S. & Chan, Jennifer S.K. & So, Mike K.P. & Lee, Kevin K.M., 2011. "Classification in segmented regression problems," Computational Statistics & Data Analysis, Elsevier, vol. 55(7), pages 2276-2287, July.
    3. Ghosh, Pulak & Huang, Lan & Yu, Binbing & Tiwari, Ram C., 2009. "Semiparametric Bayesian approaches to joinpoint regression for population-based cancer survival data," Computational Statistics & Data Analysis, Elsevier, vol. 53(12), pages 4073-4082, October.
    4. Muggeo, Vito M. R., 2010. "Analyzing Temperature Effects on Mortality Within the R Environment: The Constrained Segmented Distributed Lag Parameterization," Journal of Statistical Software, Foundation for Open Access Statistics, vol. 32(i12).
    5. Yu, Binbing & Barrett, Michael J. & Kim, Hyune-Ju & Feuer, Eric J., 2007. "Estimating joinpoints in continuous time scale for multiple change-point models," Computational Statistics & Data Analysis, Elsevier, vol. 51(5), pages 2420-2427, February.
    6. repec:jss:jstsof:32:i12 is not listed on IDEAS
    7. Irene O L Wong & Benjamin J Cowling & Gabriel M Leung & C Mary Schooling, 2013. "Age-Period-Cohort Projections of Ischaemic Heart Disease Mortality by Socio-Economic Position in a Rapidly Transitioning Chinese Population," PLOS ONE, Public Library of Science, vol. 8(4), pages 1-8, April.
    8. Chan, J.S.K. & Lam, C.P.Y. & Yu, P.L.H. & Choy, S.T.B. & Chen, C.W.S., 2012. "A Bayesian conditional autoregressive geometric process model for range data," Computational Statistics & Data Analysis, Elsevier, vol. 56(11), pages 3006-3019.
    9. Yi Li & Ram C. Tiwari, 2008. "Comparing Trends in Cancer Rates Across Overlapping Regions," Biometrics, The International Biometric Society, vol. 64(4), pages 1280-1286, December.
    10. Erjia Ge & Yee Leung, 2013. "Detection of crossover time scales in multifractal detrended fluctuation analysis," Journal of Geographical Systems, Springer, vol. 15(2), pages 115-147, April.

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