Off-Diagonal Elements of the DeWitt Expansion from the Quantum Mechanical Path Integral
Abstract
The DeWitt expansion of the matrix element , in powers of can be made in a number of ways. For (the case of interest when doing one-loop calculations) numerous approaches have been employed to determine this expansion to very high order; when (relevant for doing calculations beyond one-loop) there appear to be but two examples of performing the DeWitt expansion. In this paper we compute the off-diagonal elements of the DeWitt expansion coefficients using the Fock-Schwinger gauge. Our technique is based on representing by a quantum mechanical path integral. We also generalize our method to the case of curved space, allowing us to determine the DeWitt expansion of by use of normal coordinates. By comparison with results for the DeWitt expansion of this matrix element obtained by the iterative solution of the diffusion equation, the relative merit of different approaches to the representation of as a quantum mechanical path integral can be assessed. Furthermore, the exact dependence of on some geometric scalars can be determined. In two appendices, we discuss boundary effects in the one-dimensional quantum mechanical path integral, and the curved space generalization of the Fock-Schwinger gauge.
Cite
@article{arxiv.hep-th/9509005,
title = {Off-Diagonal Elements of the DeWitt Expansion from the Quantum Mechanical Path Integral},
author = {F. A. Dilkes and D. G. C. McKeon},
journal= {arXiv preprint arXiv:hep-th/9509005},
year = {2009}
}
Comments
16pp, REVTeX. One additional appendix concerning end-point effects for finite proper-time intervals; inclusion of these effects seem to make our results consistent with those from explicit heat-kernel methods