Recovering Sinusoids from Noisy Data Using Bayesian Inference with Simulated Annealing

Dursun Üstündağ, Mehmet Cevri̇ · Mathematical and Computational Applications · 2011

In this paper, we studied Bayesian analysis proposed by Bretthorst[6] for a general signal model equation and combined it with a simulated annealing (SA) algorithm to obtain a global maximum of a posterior probability density function (PDF) for frequencies. Thus, this analysis offers different approach to finding parameter values through a directed, but random, search of the parameter space. For this purpose, we developed a Mathematica code of this Bayesian approach together with SA and used it for recovering sinusoids from noisy data. Simulations results support its effectiveness.

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