Effective Theories of Coupled Classical and Quantum Variables from Decoherent Histories: A New Approach to the Backreaction Problem
arXiv:quant-ph/9705005 · doi:10.1103/PhysRevD.57.2337
Abstract
We use the decoherent histories approach to quantum theory to derive the form of an effective theory describing the coupling of classical and quantum variables. The derivation is carried out for a system consisting of a large particle coupled to a small particle with the important additional feature that the large particle is also coupled to a thermal environment producing the decoherence necessary for classicality. The effective theory is obtained by tracing out both the environment and the small particle variables. It consists of a formula for the probabilities of a set of histories of the large particle, and depends on the dynamics and initial quantum state of the small particle. It has the form of an almost classical particle coupled to a stochastic variable whose probabilities are determined by a formula very similar to that given by quantum measurement theory for continuous measurements of the small particle's position. The effective theory gives intuitively sensible answers when the small particle is in a superposition of localized states.
27 pages, plain Tex
References in corpus (1)
Cited by in corpus (22)
- Quantum Gravity: a Progress Report
- Stochastic Gravity: Theory and Applications
- Stochastic Gravity: Theory and Applications
- Stochastic semiclassical gravity
- Stochastic dynamics of correlations in quantum field theory: From Schwinger-Dyson to Boltzmann-Langevin equation
- Coupling Classical and Quantum Variables using Continuous Quantum Measurement Theory
- Stochastic Gravity: A Primer with Applications
- Non-equilibrium dynamics of a thermal plasma in a gravitational field
- On the semiclassical Einstein-Langevin equation
- Electromagnetic and gravitational self-force on a relativistic particle from quantum fields in curved space
- Statistical consistency of quantum-classical hybrids
- A Kinetic Theory Approach to Quantum Gravity
- A Classical-Quantum Correspondence and Backreaction
- Self-Force with a Stochastic Component from Radiation Reaction of a Scalar Charge Moving in Curved Spacetime
- Decoherence and the conditions for the classical control of quantum systems
- A healthier semi-classical dynamics
- Half Quantization
- Equivalence of Two Approaches for Quantum-Classical Hybrid Systems
- Noise induced inflation
- Restoring the second law to classical-quantum dynamics
- Mixed quantal-semiquantal dynamics with stochastic particles for backreaction
- Hydrogen atom as a quantum-classical hybrid system