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Asymptotic Properties of Solutions of Two-Dimensional Differential-Difference Elliptic Problems
Author(s) -
A. B. Muravnik
Publication year - 2017
Publication title -
sovremennaâ matematika. fundamentalʹnye napravleniâ
Language(s) - English
Resource type - Journals
eISSN - 2949-0618
pISSN - 2413-3639
DOI - 10.22363/2413-3639-2017-63-4-678-688
Subject(s) - mathematics , mathematical analysis , boundary value problem , operator (biology) , variable (mathematics) , dirichlet boundary condition , pure mathematics , elliptic operator , initial value problem , mathematical physics , biochemistry , chemistry , repressor , transcription factor , gene
In the half-plane {−∞<x<+∞}×{0<y<+∞}, the Dirichlet problem is considered for m dierential-dierence equations of the kind uxx+∑mk=1akuxx(x+hk,y)+uyy=0, where the amount of nonlocal terms of the equation is arbitrary and no commensurability conditions are imposed on their coecients a1,..., am and the parameters h1,..., hm determining the translations of the independent variable x. The only condition imposed on the coecients and parameters of the studied equation is the nonpositivity of the real part of the symbol of the operator acting with respect to the variable x. Earlier, it was proved that the specied condition (i. e., the strong ellipticity condition for the corresponding dierential-dierence operator) guarantees the solvability of the considered problem in the sense of generalized functions (according to the Gel’fand-Shilov denition), a Poisson integral representation of a solution was constructed, and it was proved that the constructed solution is smooth outside the boundary line. In the present paper, the behavior of the specied solution as y → +∞ is investigated. We prove the asymptotic closedness between the investigated solution and the classical Dirichlet problem for the dierential elliptic equation (with the same boundary-value function as in the original nonlocal problem) determined as follows: all parameters h1,..., hm of the original dierential-dierence elliptic equation are assigned to be equal to zero. As a corollary, we prove that the investigated solutions obey the classical Repnikov-Eidel’man stabilization condition: the solution stabilizes as y → +∞ if and only if the mean value of the boundary-value function over the interval (-R, +R) has a limit as R → +∞.

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