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On variational principle and canonical structure of gravitational theory in double-foliation formalism

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arxiv 1808.07352 v2 pith:63ZM74WK submitted 2018-08-22 gr-qc hep-thmath-phmath.MP

On variational principle and canonical structure of gravitational theory in double-foliation formalism

classification gr-qc hep-thmath-phmath.MP
keywords boundaryvariationscanonicalset-upactioncharacterdouble-foliationgeneral
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In this paper, we analyze the variation of the gravitational action on a bounded region of spacetime whose boundary contains segments with various characters, including null. We develop a systematic approach to decompose the derivative of metric variations into orthogonal and tangential components with respect to the boundary and express them in terms of variations of geometric objects associated with the boundary hypersurface. We suggest that a double-foliation of spacetime provides a natural and useful set-up for treating the general problem and clarifies the assumptions and results in specialized ones. In this set-up, we are able to obtain the boundary action necessary for the variational principle to become well-posed, beside the canonical structure of the theory, while keeping the variations quite general. Especially, we show how one can remove the restrictions imposed on the metric variations in previous works due to the assumption that the boundary character is kept unaltered. As a result, we find that on null boundaries a new canonical pair which is related to the change in character of the boundary. This set-up and the calculation procedure are stated in a way that can be applied to other more generalized theories of gravity.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Entropic route to Brown-York tensor: A unified framework for null and timelike hypersurfaces

    gr-qc 2026-05 unverdicted novelty 6.0

    An entropy functional yields the Brown-York tensor via conjugate momentum projection, unifying null and timelike hypersurfaces and reproducing equations in scalar-tensor gravity.

  2. Dynamical Entropy Is a Noether Charge

    hep-th 2026-07 reject novelty 5.0

    A Noether-charge derivation of the known HWZ dynamical entropy for generic null surfaces, whose local second-law proof is invalid as printed because Eq. (19) has the wrong sign in K.