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Exponential ergodicity for stochastic equations of nonnegative processes with jumps

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arxiv 1902.02833 v1 pith:DHTO3PVI submitted 2019-02-07 math.PR

classification math.PR
keywords processesergodicitybranchingexponentialstochasticconditiondistanceequations
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abstract

In this work, we study ergodicity of continuous time Markov processes on state space $\mathbb{R}_{\geq 0} := [0,\infty)$ obtained as unique strong solutions to stochastic equations with jumps. Our first main result establishes exponential ergodicity in the Wasserstein distance, provided the stochastic equation satisfies a comparison principle and the drift is dissipative. In particular, it is applicable to continuous-state branching processes with immigration (shorted as CBI processes), possibly with nonlinear branching mechanisms or in L\'evy random environments. Our second main result establishes exponential ergodicity in total variation distance for subcritical CBI processes under a first moment condition on the jump measure for branching and a $\log$-moment condition on the jump measure for immigration.

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  1. On the anisotropic stable JCIR process

    math.PR 2019-08 accept novelty 7.0 of 10

    For the anisotropic stable JCIR process, the heat kernel exists and obeys a weighted anisotropic Besov bound, the strong Feller property holds, and in the subcritical case convergence to the invariant measure is expon...

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