New Gauge Conditions in General Relativity: What Can We Learn from Them?
Abstract
The construction of conformally invariant gauge conditions for Maxwell and Einstein theories on a manifold M is found to involve two basic ingredients. First, covariant derivatives of a linear gauge (e.g. Lorenz or de Donder), completely contracted with the tensor field representing the metric on the vector bundle of the theory. Second, the addition of a compensating term, obtained by covariant differentiation of a suitable tensor field built from the geometric data of the problem. If the manifold M is endowed with an m-dimensional positive-definite metric g, the existence theorem for such a gauge in gravitational theory can be proved. If the metric g is Lorentzian, which corresponds to general relativity, some technical steps are harder, but one has again to solve integral equations on curved space-time to be able to impose such gauges.
Keywords
Cite
@article{arxiv.gr-qc/9910031,
title = {New Gauge Conditions in General Relativity: What Can We Learn from Them?},
author = {Giampiero Esposito and Cosimo Stornaiolo},
journal= {arXiv preprint arXiv:gr-qc/9910031},
year = {2009}
}
Comments
6 pages, Revtex. Talk given at the Conference "Constrained Dynamics and Quantum Gravity, QG99", Villasimius (Sardinia, Italy), September 13-17, 1999