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arXiv · 1803.07811

The LIR Method. $L^{r}$ solutions of elliptic equation in a complete riemannian manifold

Abstract

We introduce the Local Increasing Regularity Method (LIRM) which allows us to get from \emph{local} a priori estimates, on solutions $u$ of a linear equation $\displaystyle Du=ω,$ \emph{global} ones. As an application we shall prove that if $D$ is an elliptic linear differential operator of order $m$ with ${\mathcal{C}}^{\infty }$ coefficients operating on the sections of a complex vector bundle $\displaystyle G:=(H,π,M)$ over a compact Riemannian manifold $M$ without boundary and $ω\in L^{r}_{G}(M)\cap (\mathrm{k}\mathrm{e}\mathrm{r}D^{*})^{\perp },$ then there is a $u\in W^{m,r}_{G}(M)$ such that $Du=ω$ on $M.$ \quad Next we investigate the case of a compact manifold with boundary by use of the "riemannian double manifold". In the last sections we study the more delicate case of a complete but non compact Riemannian manifold by use of adapted weights.

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BibTeXRIS

Eric Amar. 2018-07-05. The LIR Method. $L^{r}$ solutions of elliptic equation in a complete riemannian manifold. https://doi.org/10.1007/s12220-018-0086-3.

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