Timeless Histories: Quantum Measurement and the Maximum Entropy Principle

The quantum measurement problem, i.e., the apparent conflict between unitary quantum evolution and non-unitary, stochastic wave-function collapse, remains unresolved a century after the formulation of quantum mechanics. We first review the standard picture, from the Copenhagen prescription with its Heisenberg cut, through von Neumann’s movable cut, to environment-induced decoherence, which explains the emergence of stable classical records but still presupposes the Born rule and therefore cannot by itself replace the measurement postulates. We then connect this problem to the Maximum Entropy Principle in two complementary ways. First, decoherence drives the measurement apparatus toward the least biased state compatible with the dynamically protected pointer distribution, so that the emergent collapse may be viewed as a thermodynamic relaxation toward constrained maximum entropy. Second, we propose a Timeless Histories formulation of quantum mechanics in which the primitive objects are ordered sequences of events rather than evolving wave functions. Their conditional probabilities are assigned, relative to specified refinements, by a single Born–Boltzmann rule that combines the quadratic structure of Born’s rule with Boltzmann’s counting of equally probable microstates. The textbook form of Born’s rule, the projection postulate, density operators, and wave functions are then recovered as derived informational constructs, while collapse becomes Bayesian conditioning on recorded events. Time and space enter only subsequently through unitary translation symmetry. Since the probability rule is postulated without reference to any physical collapse or classical observer, the usual circularity of the decoherence program is avoided. Decoherence can then be invoked to explain the stability and approximate additivity of macroscopic records, i.e., the emergence of classicality.

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Publication Details

Journal
Entropy
Published
2026-09-22
DOI
https://doi.org/10.3390/e28101042
Primary Topic
Quantum Mechanics and Applications
Type
article
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Timeless Histories: Quantum Measurement and the Maximum Entropy Principle

Alexei V. Tkachenko
Entropy
Quantum Mechanics and Applications
article

Timeless Histories: Quantum Measurement and the Maximum Entropy Principle

Alexei V. Tkachenko
article en

Abstract

The quantum measurement problem, i.e., the apparent conflict between unitary quantum evolution and non-unitary, stochastic wave-function collapse, remains unresolved a century after the formulation of quantum mechanics. We first review the standard picture, from the Copenhagen prescription with its Heisenberg cut, through von Neumann’s movable cut, to environment-induced decoherence, which explains the emergence of stable classical records but still presupposes the Born rule and therefore cannot by itself replace the measurement postulates. We then connect this problem to the Maximum Entropy Principle in two complementary ways. First, decoherence drives the measurement apparatus toward the least biased state compatible with the dynamically protected pointer distribution, so that the emergent collapse may be viewed as a thermodynamic relaxation toward constrained maximum entropy. Second, we propose a Timeless Histories formulation of quantum mechanics in which the primitive objects are ordered sequences of events rather than evolving wave functions. Their conditional probabilities are assigned, relative to specified refinements, by a single Born–Boltzmann rule that combines the quadratic structure of Born’s rule with Boltzmann’s counting of equally probable microstates. The textbook form of Born’s rule, the projection postulate, density operators, and wave functions are then recovered as derived informational constructs, while collapse becomes Bayesian conditioning on recorded events. Time and space enter only subsequently through unitary translation symmetry. Since the probability rule is postulated without reference to any physical collapse or classical observer, the usual circularity of the decoherence program is avoided. Decoherence can then be invoked to explain the stability and approximate additivity of macroscopic records, i.e., the emergence of classicality.

EntropyVol. 28(10)
Brookhaven National Laboratory (US)
Openalex Percentile: Top 100%
Quantum Mechanics and Applications
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Timeless Histories: Quantum Measurement and the Maximum Entropy Principle — Alexei V. Tkachenko · Entropy (2026) | TGRS Research Map | TGRS