English

On the error control at numerical solution of reaction-difusion equations

Numerical Analysis 2017-11-07 v1

Abstract

We suggest guaranteed, robust a posteriori error bounds for approximate solutions of the reaction-diffusion equations, modeled by the equation Δu+σu=f-\Delta u+\sigma u= f in Ω\Omega with any σ=const0\sigma={\mathrm{const}}\ge 0. We also term our bounds consistent due to one specific property. It assumes that their orders of accuracy in respect to mesh size hh are the same with the respective not improvable in the order a priori bounds. Additionally, it assumes that the pointed out equality of the orders is provided by the testing flaxes not subjected to equilibration. For any σ[0,σ]\sigma\in [0,\sigma_*], the rirght part of the new general bound of the paper contains, besides the usual diffusion term, the L2L_2 norm of the residual with the factor 1/σ1/\sqrt{\sigma_*}, where σ\sigma_* is some critical value. For solutions by the finite element method, it is estimated as σch2,c=const\sigma_*\ge ch^{-2},\,\,c={\mathrm{const}}, if Ω\partial \Omega is sufficiently smooth and the finite element space is of the 1st^{\mathrm{st}} order of accuracy at least. In general, at the derivation of a posteriori bounds, consistency is achieved by taking adequately into account the difference of the orders of the L2L_2 and H1H^1 error norms, that can be done in various ways with accordingly introduced σ\sigma_*. Two advantages of the obtained consistent a posteriori error bounds deserve attention. They are better accuracy and the possibility to avoid the use of the equilibration in the flax recovery procedures, that may greatly simplify these procedures and make them much more universal. The technique of obtaining the consistent a posteriori bounds was briefly exposed by the author in [arXiv:1702.00433v1 [math.NA], 1 Feb 2017] and [DokladyMathematicsDoklady Mathematics, 96{\mathbf{96}} (1), 2017, 380-383].

Keywords

Cite

@article{arxiv.1711.02054,
  title  = {On the error control at numerical solution of reaction-difusion equations},
  author = {Vadim Glebovich Korneev},
  journal= {arXiv preprint arXiv:1711.02054},
  year   = {2017}
}
R2 v1 2026-06-22T22:37:38.113Z