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The classic Poincaré inequality bounds the $L^q$-norm of a function $f$ in a bounded domain $\Omega \subset \mathrm{R}^n$ in terms of some $L^p$-norm of its gradient in $\Omega$. We generalize this in two ways: In the first generalization we remove a set $\Gamma$ from $\Omega$ and concentrate our attention on $\Lambda = \Omega \setminus \Gamma$. This new domain might not even be connected and hence no Poincaré inequality can generally hold for it, or if it does hold it might have a very bad constant. This is so even if the volume of $\Gamma$ is arbitrarily small. A Poincaré inequality does hold, however, if one makes the additional assumption that $f$ has a finite $L^p$ gradient norm on the whole of $\Omega$, not just on $\Lambda$. The important point is that the Poincaré inequality thus obtained bounds the $L^q$-norm of $f$ in terms of the $L^p$ gradient norm on $\Lambda$ (not $\Omega$) plus an additional term that goes to zero as the volume of $\Gamma$ goes to zero. This error term depends on $\Gamma$ only through its volume. Apart from this additive error term, the constant in the inequality remains that of the ‘nice’ domain $\Omega$. In the second generalization we are given a vector field $A$ and replace $\nabla $ by $\nabla +i A(x)$ (geometrically, a connection on a $U(1)$ bundle). Unlike the $A=0$ case, the infimum of $\Vert (\nabla +i A)f \Vert_p $ over all $f$ with a given $\Vert f \Vert_q$ is in general not zero. This permits an improvement of the inequality by the addition of a term whose sharp value we derive. We describe some open problems that arise from these generalizations.
Elliott H. Lieb 1 ; Robert Seiringer 2 ; Jakob Yngvason 3
@article{10_4007_annals_2003_158_1067,
     author = {Elliott H. Lieb and Robert Seiringer and Jakob Yngvason},
     title = {Poincar\'e inequalities in punctured domains},
     journal = {Annals of mathematics},
     pages = {1067--1080},
     publisher = {mathdoc},
     volume = {158},
     number = {3},
     year = {2003},
     doi = {10.4007/annals.2003.158.1067},
     mrnumber = {2031861},
     zbl = {1048.26012},
     language = {en},
     url = {http://geodesic.mathdoc.fr/articles/10.4007/annals.2003.158.1067/}
}
                      
                      
                    TY - JOUR AU - Elliott H. Lieb AU - Robert Seiringer AU - Jakob Yngvason TI - Poincaré inequalities in punctured domains JO - Annals of mathematics PY - 2003 SP - 1067 EP - 1080 VL - 158 IS - 3 PB - mathdoc UR - http://geodesic.mathdoc.fr/articles/10.4007/annals.2003.158.1067/ DO - 10.4007/annals.2003.158.1067 LA - en ID - 10_4007_annals_2003_158_1067 ER -
%0 Journal Article %A Elliott H. Lieb %A Robert Seiringer %A Jakob Yngvason %T Poincaré inequalities in punctured domains %J Annals of mathematics %D 2003 %P 1067-1080 %V 158 %N 3 %I mathdoc %U http://geodesic.mathdoc.fr/articles/10.4007/annals.2003.158.1067/ %R 10.4007/annals.2003.158.1067 %G en %F 10_4007_annals_2003_158_1067
Elliott H. Lieb; Robert Seiringer; Jakob Yngvason. Poincaré inequalities in punctured domains. Annals of mathematics, Tome 158 (2003) no. 3, pp. 1067-1080. doi: 10.4007/annals.2003.158.1067
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