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Consensus About Classical Reality in a Quantum Universe
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Quantum Darwinism recognizes that decoherence imprints redundant records of preferred quasi-classical pointer states on the environment. These redundant records are then accessed by observers. We show how redundancy enables and even implies consensus between observers who use fragments of that decohering environment to acquire information about systems of interest. We quantify consensus using information-theoretic measures that employ mutual information to assess the correlation between the records available to observers from distinct -- hence, independently accessible -- fragments of the environment. We prove that when these fragments have enough information about a system, observers that access them will attribute the same pointer state to that system. Thus, those who know enough about the system agree about what they know. We then test proposed measures of consensus in a solvable model of decoherence as well as in numerical simulations of a many-body system. These results provide detailed understanding of how our classical everyday world arises from within the fundamentally quantum Universe we inhabit.
Forward citations
Cited by 2 Pith papers
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Hamiltonian Thresholds for Objective Records
Strong quantum Darwinism in QND monitoring holds only inside a finite fragment window set by two competing exponents, with environmental asymmetry as the resource for readable records.
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Information Processing in Quantum Thermodynamic Systems: an Autonomous Hamiltonian Approach
Presents quantum generalizations of the second law, Landauer's bound, and speed limits for autonomous information processing, but the core Hamiltonian-structure derivation rests on an unproven equality.
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