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  4. The Analog Formulation of Sparsity Implies Infinite Divisibility and Rules Out Bernoulli-Gaussian Priors
 
conference paper

The Analog Formulation of Sparsity Implies Infinite Divisibility and Rules Out Bernoulli-Gaussian Priors

Amini, Arash  
•
Kamilov, Ulugbek S.
•
Unser, Michael  
2012
2012 Ieee Information Theory Workshop (Itw)
IEEE Information Theory Workshop (ITW)

Motivated by the analog nature of real-world signals, we investigate continuous-time random processes. For this purpose, we consider the stochastic processes that can be whitened by linear transformations and we show that the distribution of their samples is necessarily infinitely divisible. As a consequence, such a modeling rules out the Bernoulli-Gaussian distribution since we are able to show in this paper that it is not infinitely divisible. In other words, while the Bernoulli-Gaussian distribution is among the most studied priors for modeling sparse signals, it cannot be associated with any continuous-time stochastic process. Instead, we propose to adapt the priors that correspond to the increments of compound Poisson processes, which are both sparse and infinitely divisible.

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Type
conference paper
DOI
10.1109/ITW.2012.6404765
Web of Science ID

WOS:000313526400139

Author(s)
Amini, Arash  
Kamilov, Ulugbek S.
Unser, Michael  
Date Issued

2012

Publisher

Ieee

Publisher place

New York

Published in
2012 Ieee Information Theory Workshop (Itw)
ISBN of the book

978-1-4673-0223-4

Total of pages

5

Start page

682

End page

686

URL

URL

http://bigwww.epfl.ch/publications/amini1203.html

URL

http://bigwww.epfl.ch/publications/amini1203.pdf

URL

http://bigwww.epfl.ch/publications/amini1203.ps
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LIB  
Event nameEvent placeEvent date
IEEE Information Theory Workshop (ITW)

Lausanne, SWITZERLAND

SEP 03-07, 2012

Available on Infoscience
March 28, 2013
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/91088
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