Trisha Maitra
Indian Statistical Institute
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The American Statistician | 2017
Debashis Chatterjee; Trisha Maitra; Sourabh Bhattacharya
ABSTRACT Although there is a significant literature on the asymptotic theory of Bayes factor, the set-ups considered are usually specialized and often involves independent and identically distributed data. Even in such specialized cases, mostly weak consistency results are available. In this article, for the first time ever, we derive the almost sure convergence theory of Bayes factor in the general set-up that includes even dependent data and misspecified models. Somewhat surprisingly, the key to the proof of such a general theory is a simple application of a result of Shalizi to a well-known identity satisfied by the Bayes factor. Supplementary materials for this article are available online.
Statistics & Probability Letters | 2016
Trisha Maitra; Sourabh Bhattacharya
Statistics & Probability Letters | 2015
Trisha Maitra; Sourabh Bhattacharya
arXiv: Statistics Theory | 2015
Trisha Maitra; Sourabh Bhattacharya
arXiv: Statistics Theory | 2015
Trisha Maitra; Sourabh Bhattacharya
arXiv: Statistics Theory | 2015
Trisha Maitra; Sourabh Bhattacharya
arXiv: Statistics Theory | 2015
Trisha Maitra; Sourabh Bhattacharya
arXiv: Statistics Theory | 2016
Trisha Maitra; Sourabh Bhattacharya
arXiv: Statistics Theory | 2016
Trisha Maitra; Sourabh Bhattacharya
Archive | 2016
Trisha Maitra; Sourabh Bhattacharya