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20172020
most citedPosterior Consistency of Bayesian Inverse Regression and Inverse Reference Distributions

2 citations · 4 across the 5 of their papers we have counts for

collaborators

6 papers

math.ST2020

A Bayesian Multiple Testing Paradigm for Model Selection in Inverse Regression Problems

Debashis Chatterjee, Sourabh Bhattacharya

In this article, we propose a novel Bayesian multiple testing formulation for model and variable selection in inverse setups, judiciously embedding the idea of inverse reference di…

math.ST20201 cited

Convergence of Pseudo-Bayes Factors in Forward and Inverse Regression Problems

Debashis Chatterjee, Sourabh Bhattacharya

In the Bayesian literature on model comparison, Bayes factors play the leading role. In the classical statistical literature, model selection criteria are often devised used cross-…

math.ST20202 cited

Posterior Consistency of Bayesian Inverse Regression and Inverse Reference Distributions

Debashis Chatterjee, Sourabh Bhattacharya

We consider Bayesian inference in inverse regression problems where the objective is to infer about unobserved covariates from observed responses and covariates. We establish poste…

math.ST20201 cited

Posterior Convergence of Nonparametric Binary and Poisson Regression Under Possible Misspecifications

Debashis Chatterjee, Sourabh Bhattacharya

In this article, we investigate posterior convergence of nonparametric binary and Poisson regression under possible model misspecification, assuming general stochastic process prio…

hep-th2019

Non-relativistic Reduction of Spinors, New Currents and their Algebra

Rabin Banerjee, Debashis Chatterjee

A specific mapping is introduced to reduce the Dirac action to the non-relativistic (Pauli - Schrödinger) action for spinors. Using this mapping, the structures of the vector and a…

stat.ME2017

A Statistical Perspective on Inverse and Inverse Regression Problems

Debashis Chatterjee, Sourabh Bhattacharya

Inverse problems, where in broad sense the task is to learn from the noisy response about some unknown function, usually represented as the argument of some known functional form,…