"It from Bit": The Hartle-Hawking state and quantum mechanics for de Sitter observers
Ying Zhao

TL;DR
This paper clarifies the relationship between the Hartle-Hawking state, baby-universe Hilbert space, and quantum mechanics in de Sitter space, emphasizing the classical nature of the baby-universe space and how quantum mechanics emerges for observers inside de Sitter universes.
Contribution
It demonstrates that the baby-universe Hilbert space is classical and unquantized, and shows how quantum mechanics for de Sitter observers arises from classical probabilities, resolving conceptual tensions.
Findings
Baby-universe Hilbert space is classical, not quantum.
Quantum mechanics for de Sitter observers emerges from classical statistics.
De Sitter entropy corresponds to coarse-grained entropy.
Abstract
The one-state statement for closed universes has sparked considerable discussion. In this paper, we examine its physical meaning in the context of the Hartle-Hawking state and de Sitter space. We argue that the one-state property of closed universes is fully compatible with the finite-dimensional quantum mechanics experienced by observers inside de Sitter space, and that this compatibility requires neither mixing of -sectors nor any modification of the rules of the gravitational path integral. The apparent tension is resolved by sharply distinguishing the baby-universe Hilbert space, namely the space of closed universes viewed from the outside, from the bulk Hilbert space that governs quantum mechanics for an observer inside a single de Sitter universe. The baby-universe Hilbert space, together with its commutative operator algebra, is not a quantum-mechanical Hilbert space:…
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Taxonomy
TopicsNoncommutative and Quantum Gravity Theories · Black Holes and Theoretical Physics · Cosmology and Gravitation Theories
