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      On sufficient conditions for degrees of freedom counting of multi-field generalised Proca theories

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          Abstract

          We derive sufficient conditions for theories consisting of multiple vector fields, which could also couple to external fields, to be multi-field generalised Proca theories. The conditions are derived by demanding that the theories have the required structure of constraints, giving the correct number of degrees of freedom. The Faddeev-Jackiw constraint analysis is used and is cross-checked by Lagrangian constraint analysis. To ensure the theory is constraint, we impose a standard special form of Hessian matrix. The derivation benefits from the realisation that the theories are diffeomorphism invariance (or, in the case of flat spacetime, invariant under Lorentz isometry). The sufficient conditions obtained include a refinement of secondary-constraint enforcing relations derived previously in literature, as well as a condition which ensures that the iteration process of constraint analysis terminates. Some examples of theories are analysed to show whether they satisfy the sufficient conditions. Most notably, due to the obtained refinement on some of the conditions, some theories which are previously interpreted as being undesirable are in fact legitimate, and vice versa. This in turn affects the previous interpretations of cosmological implications which should later be reinvestigated.

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          Author and article information

          Journal
          27 March 2023
          2024-01-06
          Article
          10.1007/s10714-023-03191-8
          2303.15261
          b7683950-2321-4c03-b590-48704d6cc0ce

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

          History
          Custom metadata
          Gen Relativ Gravit 56, 5 (2024)
          32 pages, no figure. Version submitted to General Relativity and Gravitation. Only title is changed to match published version. Please see published version for substantial improvements in discussion and presentation with respect to this preprint version
          hep-th gr-qc

          General relativity & Quantum cosmology,High energy & Particle physics
          General relativity & Quantum cosmology, High energy & Particle physics

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