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conference paper
Lower-bounds on the Bayesian Risk in Estimation Procedures via f–Divergences
2022
2022 IEEE International Symposium on Information Theory (ISIT)
We consider the problem of parameter estimation in a Bayesian setting and propose a general lower-bound that includes part of the family of f-Divergences. The results are then applied to specific settings of interest and compared to other notable results in the literature. In particular, we show that the known bounds using Mutual Information can be improved by using, for example, Maximal Leakage, Hellinger divergence, or generalizations of the Hockey-Stick divergence.
Type
conference paper
Authors
Publication date
2022
Published in
2022 IEEE International Symposium on Information Theory (ISIT)
Start page
1106
End page
1111
Peer reviewed
REVIEWED
EPFL units
Event name | Event place | Event date |
Espoo, Finland | June 26-July 1, 2022 | |
Available on Infoscience
December 9, 2022
Use this identifier to reference this record