Theory of Quantum Gravity Information Processing
arXiv:1401.6706 · doi:10.1002/que2.23
Abstract
The theory of quantum gravity is aimed to fuse general relativity with quantum theory into a more fundamental framework. The space of quantum gravity provides both the non-fixed causality of general relativity and the quantum uncertainty of quantum mechanics. In a quantum gravity scenario, the causal structure is indefinite and the processes are causally non-separable. Here, we provide a model for the information processing structure of quantum gravity. We show that the quantum gravity environment is an information resource-pool from which valuable information can be extracted. We analyze the structure of the quantum gravity space and the entanglement of the space-time geometry. We study the information transfer capabilities of quantum gravity space and define the quantum gravity channel. We reveal that the quantum gravity space acts as a background noise on the local environment states. We characterize the properties of the noise of the quantum gravity space and show that it allows the separate local parties to simulate remote outputs from the local environment state, through the process of remote simulation.
References in corpus (21)
- Quantum Computing in the NISQ era and beyond
- Supplementary information for "Quantum supremacy using a programmable superconducting processor"
- Quantum Machine Learning
- General Benchmarks for Quantum Repeaters
- Fundamental Limits of Repeaterless Quantum Communications
- Quantum Computational Supremacy
- Creating and probing macroscoping entanglement with light
- A Survey on Quantum Channel Capacities
- Experimental Superposition of Orders of Quantum Gates
- Experimental Verification of an Indefinite Causal Order
- Towards Quantum Gravity: A Framework for Probabilistic Theories with Non-Fixed Causal Structure
- Exponential Communication Complexity Advantage from Quantum Superposition of the Direction of Communication
- Local and Distributed Quantum Computation
- Closed timelike curves via post-selection: theory and experimental demonstration
- Theory of channel simulation and bounds for private communication
- Quantum discord for two-qubit X states: Analytical formula with very small worst-case error
- The structure of degradable quantum channels
- General bounds for sender-receiver capacities in multipoint quantum communications
- Can closed timelike curves or nonlinear quantum mechanics improve quantum state discrimination or help solve hard problems?
- Entanglement, non-Markovianity, and causal non-separability
- Quantifiable simulation of quantum computation beyond stochastic ensemble computation