Higher Derivative Gravity and Torsion from the Geometry of C-spaces
Abstract
We start from a new theory (discussed earlier) in which the arena for physics is not spacetime, but its straightforward extension-the so called Clifford space (-space), a manifold of points, lines, areas, etc..; physical quantities are Clifford algebra valued objects, called polyvectors. This provides a natural framework for description of supersymmetry, since spinors are just left or right minimal ideals of Clifford algebra. The geometry of curved -space is investigated. It is shown that the curvature in -space contains higher orders of the curvature in the underlying ordinary space. A -space is parametrized not only by 1-vector coordinates but also by the 2-vector coordinates , 3-vector coordinates , etc., called also {\it holographic coordinates}, since they describe the holographic projections of 1-lines, 2-loops, 3-loops, etc., onto the coordinate planes. A remarkable relation between the "area" derivative and the curvature and torsion is found: if a scalar valued quantity depends on the coordinates this indicates the presence of torsion, and if a vector valued quantity depends so, this implies non vanishing curvature. We argue that such a deeper understanding of the -space geometry is a prerequisite for a further development of this new theory which in our opinion will lead us towards a natural and elegant formulation of -theory.
Keywords
Cite
@article{arxiv.hep-th/0110079,
title = {Higher Derivative Gravity and Torsion from the Geometry of C-spaces},
author = {C. Castro and M. Pavsic},
journal= {arXiv preprint arXiv:hep-th/0110079},
year = {2015}
}
Comments
19 pages; A section describing the main physical implications of C-space is added, and the rest of the text is modified accordingly