Generalized Fermat's principle and action for light rays in a curved spacetime
arXiv:1307.3291 · doi:10.1103/PhysRevD.88.064039
Abstract
We start with formulation of the generalized Fermat's principle for light propagation in a curved spacetime. We apply Pontryagin's minimum principle of the optimal control theory and obtain an effective Hamiltonian for null geodesics in a curved spacetime. We explicitly demonstrate that dynamical equations for this Hamiltonian correctly reproduce null geodesic equations. Other forms of the action for light rays in a curved spacetime are also discussed.
7 pages 1 figure
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