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Asymptotically autonomous robustness of random attractors for a class of weakly dissipative stochastic wave equations on unbounded domains

Tomás Caraballo, Boling Guo, Nguyen Huy Tuan, Renhai Wang

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Published: Nov 5, 2020

DOI: 10.1017/prm.2020.77

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Source abstract

This paper is concerned with the asymptotic behaviour of solutions to a class of non-autonomous stochastic nonlinear wave equations with dispersive and viscosity dissipative terms driven by operator-type noise defined on the entire space Rn\mathbb {R}^n . The existence, uniqueness, time-semi-uniform compactness and asymptotically autonomous robustness of pullback random attractors are proved in H1(Rn)×H1(Rn)H^1(\mathbb {R}^n)\times H^1(\mathbb {R}^n) when the growth rate of the nonlinearity has a subcritical range, the density of the noise is suitably controllable, and the time-dependent force converges to a time-independent function in some sense. The main difficulty to establish the time-semi-uniform pullback asymptotic compactness of the solutions in H1(Rn)×H1(Rn)H^1(\mathbb {R}^n)\times H^1(\mathbb {R}^n) is caused by the lack of compact Sobolev embeddings on Rn\mathbb {R}^n , as well as the weak dissipativeness of the equations is surmounted at light of the idea of uniform tail-estimates and a spectral decomposition approach. The measurability of random attractors is proved by using an argument which considers two attracting universes developed by Wang and Li (Phys. D 382 : 46–57, 2018).

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