On measuring the Quantum Universe
arXiv:2604.15130 · doi:10.1002/asna.70100
Abstract
We present a theoretical analysis of the WDW approach to quantum cosmology extended to gravity theories with torsion. The dynamics of the FLRW universe is formulated as a classical Hamiltonian problem of point particle mechanics. Unlike in the WDW formalism, the Hamiltonian is not zero, though, and the 3rd quantization does not enforce the cosmic time to vanish. The wave function of the Universe appears as a superposition of eigenfunctions of the quantum Hamiltonian with the cosmic time being the conjugate to its eigenvalues, spatial curvatures. The notion of weak measurement is then introduced to avoid the collapse of the total universal wave function upon measurements of the parameter set describing matter and spacetime. The collapse postulate of the standard Copenhagen quantum theory is discussed and the de Broglie-Bohm interpretation of the effective wave function introduced. The question of the boundary conditions for both, the wave function and the Bohmian guidance equation, is addressed. The corresponding numerical calculations will be published in a separate paper.
21 pages, 1 figure, accepted for publication in Astronomische Nachrichten
References in corpus (11)
- Bohmian Mechanics and Quantum Field Theory
- Quantum Equilibrium and the Role of Operators as Observables in Quantum Theory
- Spontaneous creation of the universe from nothing
- Quantum Mechanics in a Time-Asymmetric Universe: On the Nature of the Initial Quantum State
- The Bohm Interpretation of Quantum Cosmology
- Bohm's approach to quantum mechanics: Alternative theory or practical picture?
- Delayed Choice Experiments and the Bohm Approach
- Torsional dark energy in quadratic gauge gravity
- Quantum Cosmology
- Torsion driving cosmic expansion
- Wheeler-DeWitt Universe Wave Function in the presence of stiff matter