Probing the Information-Probabilistic Description
arXiv:2105.05034 · doi:10.1007/s10773-022-05129-3
Abstract
The information conservation principle is probed for classically isolated systems, like the Hubble sphere and black holes, for which the rise of entanglement entropy across their horizons is expected. We accept the analogy of Landauer's principle that entanglement information should introduce some negative potential energy, which corresponds to the positive energy of measurements that destroy this quantum behavior. We estimated these dark-energy-like contributions and found that they can explain the dark energy of the Universe and also are able to resolve the observed superluminal motion and redshift controversies for black holes.
The version published by Int. J. Theor. Phys
References in corpus (10)
- First M87 Event Horizon Telescope Results. VIII. Magnetic Field Structure near The Event Horizon
- Quantum information can be negative
- The thermodynamic meaning of negative entropy
- Geodesic equation in Schwarzschild--(anti-)de Sitter space--times: Analytical solutions and applications
- The Black Hole Information Problem
- Entropic Dynamics, Time and Quantum Theory
- Emergence and Expansion of Cosmic Space as due to the Quest for Holographic Equipartition
- Detection of Superluminal Motion in the X-Ray Jet of M87
- A Machian Solution of the Hierarchy Problem
- The energy meaning of Boltzmann's constant