2012
DOI: 10.1049/iet-spr.2011.0335
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Bayesian recovery of sinusoids from noisy data with parallel tempering

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Cited by 4 publications
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“…The quantity p(H|I) is known as a prior probability distribution function (PDF) of H in the absence of D and the quantity p(H|D, I) is a posterior PDF of H, which is a compromise between the prior information and the data. More details and references about Bayesian approach can be found in papers [26][27][28][29][30].…”
Section: Bayesian Logical Inferencesmentioning
confidence: 99%
“…The quantity p(H|I) is known as a prior probability distribution function (PDF) of H in the absence of D and the quantity p(H|D, I) is a posterior PDF of H, which is a compromise between the prior information and the data. More details and references about Bayesian approach can be found in papers [26][27][28][29][30].…”
Section: Bayesian Logical Inferencesmentioning
confidence: 99%