Identification is Pointless: Quantum Coordinates, Localisation of Events, and the Quantum Hole Argument
arXiv:2402.10267 · doi:10.1038/s42005-025-02084-3
Abstract
The study of quantum reference frames (QRFs) is motivated by the idea of taking into account the quantum properties of the reference frames used, explicitly or implicitly, in our description of physical systems. Like classical reference frames, QRFs can be used to define physical quantities relationally. Unlike their classical analogue, they relativise the notions of superposition and entanglement. Here, we explain this feature by examining how configurations or locations are identified across different branches in superposition. We show that, in the presence of symmetries, whether a system is in "the same" or "different" configurations across the branches depends on the choice of QRF. Hence, sameness and difference -- and thus superposition and entanglement -- lose their absolute meaning. We apply these ideas to the context of semi-classical spacetimes in superposition and use coincidences of four scalar fields to construct a comparison map between spacetime points in the different branches. This reveals that the localisation of an event is frame-dependent. We discuss the implications for indefinite causal order and the locality of interaction and conclude with a generalisation of Einstein's hole argument to the quantum context.
25 pages, 12 figures. Comments are welcome. Accepted in Communications Physics
References in corpus (28)
- A Spin Entanglement Witness for Quantum Gravity
- Reference frames, superselection rules, and quantum information
- Gravitationally-induced entanglement between two massive particles is sufficient evidence of quantum effects in gravity
- An Algebra of Observables for de Sitter Space
- Generalized entropy for general subregions in quantum gravity
- Quantum superposition of spacetimes obeys Einstein's Equivalence Principle
- Quantum Relativity of Subsystems
- Edge modes as reference frames and boundary actions from post-selection
- Experiments on quantum causality
- Quantum signatures of black hole mass superpositions
- Algebra of diffeomorphism-invariant observables in Jackiw-Teitelboim Gravity
- Quantum reference frames, measurement schemes and the type of local algebras in quantum field theory
- Crossed product algebras and generalized entropy for subregions
- Quantum superpositions of Minkowski spacetime
- Edge modes as dynamical frames: charges from post-selection in generally covariant theories
- Internal quantum reference frames for finite Abelian groups
- Causal structure in the presence of sectorial constraints, with application to the quantum switch
- Quantum Reference Frames at the Boundary of Spacetime
- Operational Quantum Reference Frame Transformations
- Quantum reference frames for an indefinite metric
- Coordinates, observables and symmetry in relativity
- Indefinite Causal Orders from Superpositions in Time
- Semifinite von Neumann algebras in gauge theory and gravity
- Comparing the quantum switch and its simulations with energetically-constrained operations
- Embedding cyclic information-theoretic structures in acyclic spacetimes: no-go results for indefinite causality
- Quantum conformal symmetries for spacetimes in superposition
- Quantum Reference Frames for Lorentz Symmetry
- Schrödinger's Black Hole Cat
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- The sum of entanglement and subsystem coherence is invariant under quantum reference frame transformations
- What can we do in a symmetry-constrained perspective? The importance of the total charge's status in quantum reference frame frameworks
- Quantum Galilei group as quantum reference frame transformations
- A spacetime-covariant approach to inertial and accelerated quantum clocks in first-quantization
- Knot invariants and indefinite causal order