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Quantum gravity: a quantum-first approach

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arxiv 1805.06900 v1 pith:T2D5BZQD submitted 2018-05-17 hep-th gr-qcquant-ph

classification hep-thgr-qcquant-ph
keywords gravitygeneralquantumstructureapproachcorrespondencehilbertimportant
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A "quantum-first" approach to gravity is described, where rather than quantizing general relativity, one seeks to formulate the physics of gravity within a quantum-mechanical framework with suitably general postulates. Important guides are the need for appropriate mathematical structure on Hilbert space, and correspondence with general relativity and quantum field theory in weak-gravity situations. A basic physical question is that of "Einstein separability:" how to define mutually independent subsystems, e.g. through localization. Standard answers via tensor products or operator algebras conflict with properties of gravity, as is seen in the correspondence limit; this connects with discussions of "soft hair." Instead, gravitational behavior suggests a networked Hilbert space structure. This structure plus unitarity provide important clues towards a quantum formulation of gravity.

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  1. Quantum gravity observables: observation, algebras, and mathematical structure

    hep-th 2025-05 conditional novelty 3.0 of 10

    A perspective arguing that gravitationally dressed observables generalize crossed product algebras and that quantum gravity may need non-algebraic structure on Hilbert space.

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