2019
DOI: 10.1051/ps/2019019
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Bayesian wavelet de-noising with the caravan prior

Abstract: According to both domain expert knowledge and empirical evidence, wavelet coefficients of real signals tend to exhibit clustering patterns, in that they contain connected regions of coefficients of similar magnitude (large or small). A wavelet de-noising approach that takes into account such a feature of the signal may in practice outperform other, more vanilla methods, both in terms of the estimation error and visual appearance of the estimates. Motivated by this observation, we present a Bayesian approach to… Show more

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Cited by 5 publications
(2 citation statements)
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“…On the contrary, as we will show in the numerical examples, for the LNGL‐prior, this overparametrization can be substantially balanced/regularized by equipping the parameter τ with a prior distribution. The idea of histogram‐type priors with positively correlated adjacent bins has recently been used successfully in other settings as well, see for instance Gugushvili et al (2018), Gugushvili et al (2019).…”
Section: Likelihood and Prior Specificationmentioning
confidence: 99%
“…On the contrary, as we will show in the numerical examples, for the LNGL‐prior, this overparametrization can be substantially balanced/regularized by equipping the parameter τ with a prior distribution. The idea of histogram‐type priors with positively correlated adjacent bins has recently been used successfully in other settings as well, see for instance Gugushvili et al (2018), Gugushvili et al (2019).…”
Section: Likelihood and Prior Specificationmentioning
confidence: 99%
“…As a side remark, we note that estimation of discontinuous functions might be a delicate matter with the GMC prior. See Gugushvili et al (2019a) for further remarks.…”
Section: Imposing a Prior On The Number Of Binsmentioning
confidence: 99%