A theory of hypoellipticity and unique ergodicity for semilinear stochastic PDEs

dc.contributor.author

Hairer, Martin

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Mattingly, Jonathan C

dc.date.accessioned

2015-03-20T17:55:04Z

dc.date.issued

2011-05-09

dc.description.abstract

We present a theory of hypoellipticity and unique ergodicity for semilinear parabolic stochastic PDEs with "polynomial" nonlinearities and additive noise, considered as abstract evolution equations in some Hilbert space. It is shown that if Hörmander's bracket condition holds at every point of this Hilbert space, then a lower bound on the Malliavin covariance operatorμt can be obtained. Informally, this bound can be read as "Fix any finite-dimensional projection on a subspace of sufficiently regular functions. Then the eigenfunctions of μt with small eigenvalues have only a very small component in the image of Π." We also show how to use a priori bounds on the solutions to the equation to obtain good control on the dependency of the bounds on the Malliavin matrix on the initial condition. These bounds are sufficient in many cases to obtain the asymptotic strong Feller property introduced in [HM06]. One of the main novel technical tools is an almost sure bound from below on the size of "Wiener polynomials," where the coefficients are possibly non-adapted stochastic processes satisfying a Lips chitz condition. By exploiting the polynomial structure of the equations, this result can be used to replace Norris' lemma, which is unavailable in the present context. We conclude by showing that the two-dimensional stochastic Navier-Stokes equations and a large class of reaction-diffusion equations fit the framework of our theory.

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1083-6489

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https://hdl.handle.net/10161/9521

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Institute of Mathematical Statistics

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Electronic Journal of Probability

dc.title

A theory of hypoellipticity and unique ergodicity for semilinear stochastic PDEs

dc.type

Journal article

duke.contributor.orcid

Mattingly, Jonathan C|0000-0002-1819-729X

pubs.begin-page

658

pubs.end-page

738

pubs.organisational-group

Duke

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Mathematics

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Statistical Science

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Trinity College of Arts & Sciences

pubs.publication-status

Published

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16

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