We perform a canonical, reduced phase space quantisation of General Relativity by Loop Quantum Gravity (LQG) methods. The explicit construction of the reduced phase space is made possible by the combination of 1. the Brown -- Kuchar mechanism in the presence of pressure free dust fields which allows to deparametrise the theory and 2. Rovelli's relational formalism in the extended version developed by Dittrich to construct the algebra of gauge invariant observables. Since the resulting algebra of observables is very simple, one can quantise it using the methods of LQG. Basically, the kinematical Hilbert space of non reduced LQG now becomes a physical Hilbert space and the kinematical results of LQG such as discreteness of spectra of geometri...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...
We perform a canonical, reduced phase space quantisation of General Relativity by Loop Quantum Gravi...
We perform a reduced phase space quantization of gravity using four Klein–Gordon scalar fields as re...
In her recent work, Dittrich generalized Rovelli's idea of partial observables to construct Dirac ob...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...
In her recent work, Dittrich generalized Rovelli's idea of partial observables to construct Dirac ob...
The system of gravity coupled to the non-rotational dust field is studied at both classical and quan...
We introduce a new framework for loop quantum gravity: mimicking the spin foam quantization procedur...
We quantize spherically symmetric vacuum gravity without gauge fixing the diffeomorphism constraint....
We introduce a new framework for loop quantum gravity: mimicking the spin foam quantization procedur...
In order to test the canonical quantization programme for general relativity we introduce a reduced ...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...
We perform a canonical, reduced phase space quantisation of General Relativity by Loop Quantum Gravi...
We perform a reduced phase space quantization of gravity using four Klein–Gordon scalar fields as re...
In her recent work, Dittrich generalized Rovelli's idea of partial observables to construct Dirac ob...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...
In her recent work, Dittrich generalized Rovelli's idea of partial observables to construct Dirac ob...
The system of gravity coupled to the non-rotational dust field is studied at both classical and quan...
We introduce a new framework for loop quantum gravity: mimicking the spin foam quantization procedur...
We quantize spherically symmetric vacuum gravity without gauge fixing the diffeomorphism constraint....
We introduce a new framework for loop quantum gravity: mimicking the spin foam quantization procedur...
In order to test the canonical quantization programme for general relativity we introduce a reduced ...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
Hamiltonian constraints feature in the canonical formulation of general relativity. Unlike typical c...
We introduce a new top down approach to canonical quantum gravity, called Algebraic Quantum Gravity ...