Chaos, Dirac observables and constraint quantization
arXiv:1508.01947
Abstract
There is good evidence that full general relativity is non-integrable or even chaotic. We point out the severe repercussions: differentiable Dirac observables and a reduced phase space do not exist in non-integrable constrained systems and are thus unlikely to occur in a generic general relativistic context. Instead, gauge invariant quantities generally become discontinuous, thus not admitting Poisson-algebraic structures and posing serious challenges to a quantization. Non-integrability also renders the paradigm of relational dynamics cumbersome, thereby straining common interpretations of the dynamics. We illustrate these conceptual and technical challenges with simple toy models. In particular, we exhibit reparametrization invariant models which fail to be integrable and, as a consequence, can either not be quantized with standard methods or lead to sick quantum theories without a semiclassical limit. These troubles are qualitatively distinct from semiclassical subtleties in unconstrained quantum chaos and can be directly traced back to the scarcity of Dirac observables. As a possible resolution, we propose to change the method of quantization by refining the configuration space topology until the generalized observables become continuous in the new topology and can acquire a quantum representation. This leads to the polymer quantization method underlying loop quantum cosmology and gravity. Remarkably, the polymer quantum theory circumvents the problems of the quantization with smooth topology, indicating that non-integrability and chaos, while a challenge, may not be a fundamental obstruction for quantum gravity.
48 pages, 9 figures, lots of discussion
References in corpus (9)
- Quantum Gravity at a Lifshitz Point
- A bound on chaos
- Polymer Quantum Mechanics and its Continuum Limit
- An effective approach to the problem of time
- Effective approach to the problem of time: general features and examples
- Physical evolution in Loop Quantum Cosmology: The example of vacuum Bianchi I
- Uniform discretizations: a new approach for the quantization of totally constrained systems
- Dirac-like approach for consistent discretizations of classical constrained theories
- Diffeomorphism symmetry in quantum gravity models
Cited by in corpus (9)
- The Trinity of Relational Quantum Dynamics
- Switching quantum reference frames in the N-body problem and the absence of global relational perspectives
- Can chaos be observed in quantum gravity?
- Stochastic Emergent Quantum Gravity
- Quantization of dynamical symplectic reduction
- Perspective-neutral approach to quantum frame covariance for general symmetry groups
- Regarding the `Hole Argument' and the `Problem of Time'
- Observable currents in lattice field theories
- A Local Resolution of the Problem of Time. VIII. Assignment of Observables