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arxiv: 1605.08534 · v1 · pith:YHPJUQ63new · submitted 2016-05-27 · 🧮 math.ST · math.PR· stat.TH

On the two-filter approximations of marginal smoothing distributions in general state space models

classification 🧮 math.ST math.PRstat.TH
keywords distributionsstatesmoothingtwo-filterapproximatingapproximationapproximationsdistribution
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A prevalent problem in general state space models is the approximation of the smoothing distribution of a state conditional on the observations from the past, the present, and the future. The aim of this paper is to provide a rigorous analysis of such approximations of smoothed distributions provided by the two-filter algorithms. We extend the results available for the approximation of smoothing distributions to these two-filter approaches which combine a forward filter approximating the filtering distributions with a backward information filter approximating a quantity proportional to the posterior distribution of the state given future observations.

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