
TL;DR
This paper reviews stochastic semiclassical gravity, emphasizing its role in understanding quantum fluctuations' impact on spacetime, and explores its applications to black holes, cosmology, and high-energy phenomena.
Contribution
It introduces the stochastic extension of semiclassical gravity, connecting quantum fluctuations to classical spacetime dynamics and proposing new investigative directions.
Findings
Stochastic gravity models black hole fluctuations and backreaction.
Correlation hierarchy reveals high-energy quantum information.
Planck scale phenomena include tunneling, pair creation, and spacetime foams.
Abstract
We give a summary of the status of current research in stochastic semiclassical gravity and suggest directions for further investigations. This theory generalizes the semiclassical Einstein equation to an Einstein-Langevin equation with a stochastic source term arising from the fluctuations of the energy-momentum tensor of quantum fields. We mention recent efforts in applying this theory to the study of black hole fluctuations and backreaction problems, linear response of hot flat space, and structure formation in inflationary cosmology. To explore the physical meaning and implications of this stochastic regime in relation to both classical and quantum gravity, we find it useful to take the view that semiclassical gravity is mesoscopic physics and that general relativity is the hydrodynamic limit of certain spacetime quantum substructures. Three basic issues - stochasticity,…
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