Life in an Energy Eigenstate: Decoherent Histories Analysis of a Model Timeless Universe
J.J.Halliwell, J.Thorwart

TL;DR
This paper explores how decoherent histories can be used to analyze the behavior of quantum systems in energy eigenstates without a time parameter, connecting quantum and classical probability distributions.
Contribution
It demonstrates that decoherent histories can effectively describe timeless quantum systems and recover classical behavior, supporting semiclassical interpretations.
Findings
Decoherent histories approximate classical phase space distributions.
Environmental interactions are necessary for decoherence in some states.
The approach respects reparametrization invariance.
Abstract
Inspired by quantum cosmology, in which the wave function of the universe is annihilated by the total Hamiltonian, we consider the internal dynamics of a simple particle system in an energy eigenstate. Such a system does not possess a uniquely defined time parameter and all physical questions about it must be posed without reference to time. We consider in particular the question, what is the probability that the system's trajectory passes through a set of regions of configuration space without reference to time? We first consider the classical case, where the answer has a variety of forms in terms of a phase space probability distribution function. We then consider the quantum case, and we analyze this question using the decoherent histories approach to quantum theory, adapted to questions which do not involve time. When the histories are decoherent, the probabilities approximately…
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