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Applications of the van Trees inequality: A Bayesian CramrRao bound | part of Bayesian Bounds for Parameter Estimation and Nonlinear Filtering/Tracking | Wiley-IEEE Press books | IEEE Xplore

Applications of the van Trees inequality: A Bayesian CramrRao bound

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Chapter Abstract:

We use a Bayesian version of the Cramér-Rao lower bound due to van Trees to give an elementary proof that the limiting distribution of any regular estimator cannot have a...Show More

Chapter Abstract:

We use a Bayesian version of the Cramér-Rao lower bound due to van Trees to give an elementary proof that the limiting distribution of any regular estimator cannot have a variance less than the classical information bound, under minimal regularity conditions. We also show how minimax convergence rates can be derived in various non- and semi-parametric problems from the van Trees inequality. Finally we develop multivariate versions of the inequality and give applications.

Page(s): 879 - 899
Copyright Year: 2007
ISBN Information:

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