Comment on "Sequential Monte Carlo for Bayesian Computation" (P. Del Moral, A. Doucet, A. Jasra)

Mathematics – Statistics Theory

Scientific paper

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To appear in the published proceedings of the Eighth Valencia International Meeting on Bayesian Statistics

Scientific paper

The main question concerns another recent advance in sequential Monte Carlo,
the use of a mixture transition kernel that automatically adapts to the target
distribution (Douc et al. 2006). Is there a class of static inference problems
for which the backward-kernel approach is better suited, or is it too early to
predict which method may have better performance in a particular situation?

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