Intrinsic measurement errors for the speed of light in vacuum
arXiv:1502.04979 · doi:10.1088/1361-6382/aa8058
Abstract
The speed of light in vacuum, one of the most important and precisely measured natural constants, is fixed by convention to m/s. Advanced theories predict possible deviations from this universal value, or even quantum fluctuations of . Combining arguments from quantum parameter estimation theory and classical general relativity, we here establish rigorously the existence of lower bounds on the uncertainty to which the speed of light in vacuum can be determined in a given region of space-time, subject to several reasonable restrictions. They provide a novel perspective on the experimental falsifiability of predictions for the quantum fluctuations of space-time.
13 pages of RevTex4-1, 2 figures; title has been changed for the final version
References in corpus (10)
- Generalized Limits for Single-Parameter Quantum Estimation
- GW150914: Implications for the stochastic gravitational wave background from binary black holes
- Lorentz symmetry breaking as a quantum field theory regulator
- Optimal quantum estimation of the Unruh-Hawking effect
- Phase estimation without a priori knowledge in the presence of loss
- Quantum metrology for relativistic quantum fields
- Cosmological particle production in emergent rainbow spacetimes
- New Constraints on Quantum Gravity from X-ray and Gamma-Ray Observations
- Modified Special Relativity on a fluctuating spacetime
- Optical cavity resonator in an expanding universe
Cited by in corpus (6)
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