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Markov Genealogy Processes

We construct a family of genealogy-valued Markov processes that are induced by a continuous-time Markov population process. We derive exact expressions for the likelihood of a given genealogy conditional on the history of the underlying population process. These lead to a nonlinear filtering equation which can be used to design efficient Monte Carlo inference algorithms. We demonstrate these calculations with several examples. Existing full-information approaches for phylodynamic inference are special cases of the theory.

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Related contextRelated contextRelated contextRelated contextCo-authorshipCo-authorshipCo-authorshipRelated contextRelated contextAuthorshipAuthorshipAuthorshipTopic signalTopic signalTopic signalTopic signalTopic signalRelated contextRelated contextWMarkov Genealogy Processespreprint / 2022AAaron A. KingResearcherAQianying LinResearcherAEdward L. IonidesResearcherTMethodology5119 worksTmath.PR7239 worksTApplications3567 worksTQuantitative Methods1848 worksTPopulations and Evolution1941 works
PaperSignal 108 links

Markov Genealogy Processes

preprint / 2022

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