Efficient Quasi-Geodesics on the Stiefel Manifold
Abstract
Solving the so-called geodesic endpoint problem, i.e., finding a geodesic that connects two given points on a manifold, is at the basis of virtually all data processing operations, including averaging, clustering, interpolation and optimization. On the Stiefel manifold of orthonormal frames, this problem is computationally involved. A remedy is to use quasi-geodesics as a replacement for the Riemannian geodesics. Quasi-geodesics feature constant speed and covariant acceleration with constant (but possibly non-zero) norm. For a well-known type of quasi-geodesics, we derive a new representation that is suited for large-scale computations. Moreover, we introduce a new kind of quasi-geodesics that turns out to be much closer to the Riemannian geodesics.
Cite
@article{arxiv.2105.07017,
title = {Efficient Quasi-Geodesics on the Stiefel Manifold},
author = {Thomas Bendokat and Ralf Zimmermann},
journal= {arXiv preprint arXiv:2105.07017},
year = {2021}
}
Comments
8 pages, 1 figure, conference GSI2021