Gauge invariant canonical cosmological perturbation theory with geometrical clocks in extended phase-space — A review and applications
DOI10.1142/S0218271818300057zbMath1430.83005arXiv1712.09878MaRDI QIDQ5216114
Kristina Giesel, Adrian Herzog
Publication date: 14 February 2020
Published in: International Journal of Modern Physics D (Search for Journal in Brave)
Full work available at URL: https://arxiv.org/abs/1712.09878
general relativitygauge invarianceDirac observablesrelational frameworkcanonical cosmological perturbation theory
Relativistic cosmology (83F05) Applications of differential geometry to physics (53Z05) Research exposition (monographs, survey articles) pertaining to relativity and gravitational theory (83-02) Yang-Mills and other gauge theories in mechanics of particles and systems (70S15) Approximation procedures, weak fields in general relativity and gravitational theory (83C25)
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Cites Work
- Gauge unfixing in second-class constrained systems
- The hole argument for covariant theories
- Scalar perturbations in scalar field quantum cosmology
- Scalar and vector perturbations in quantum cosmological backgrounds
- Construction of a Complete Set of Independent Observables in the General Theory of Relativity
- "Gauge-Invariant" Variables in General Relativity
- Observables in General Relativity
- Reduced phase space quantization and Dirac observables
- Manifestly gauge invariant perturbations of scalar–tensor theories of gravity
- Scalar material reference systems and loop quantum gravity
- Perturbations of Friedmann-Robertson-Walker cosmological models
- LTB spacetimes in terms of Dirac observables
- INTRODUCTION TO DIRAC OBSERVABLES
- TIME AND INTERPRETATIONS OF QUANTUM GRAVITY
- Algebraic quantum gravity (AQG): IV. Reduced phase space quantization of loop quantum gravity
- Gauge-invariant perturbations around symmetry-reduced sectors of general relativity: applications to cosmology
- Modern Canonical Quantum General Relativity