Log-Harnack Inequality for Stochastic Burgers Equations and Applications
classification
🧮 math.PR
keywords
inequalitysemigroupapplicationsburgersequationslog-harnackstochasticadjoint
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By proving an $L^2$-gradient estimate for the corresponding Galerkin approximations, the log-Harnack inequality is established for the semigroup associated to a class of stochastic Burgers equations. As applications, we derive the strong Feller property of the semigroup, the irreducibility of the solution, the entropy-cost inequality for the adjoint semigroup, and entropy upper bounds of the transition density.
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