2021
DOI: 10.26226/morressier.604907f41a80aac83ca25cf2
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Analysis of Markov Jump Processes under Terminal Constraints

Abstract: Many probabilistic inference problems such as stochastic filtering or the computation of rare event probabilities require model analysis under initial and terminal constraints. We propose a solution to this bridging problem for the widely used class of population-structured Markov jump processes. The method is based on a state-space lumping scheme that aggregates states in a grid structure. The resulting approximate bridging distribution is used to iteratively refine relevant and truncate irrelevant parts of t… Show more

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Cited by 2 publications
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