Black hole qubit correspondence from quantum circuits
arXiv:1401.4196 · doi:10.1142/s0217732315501047
Abstract
We consider the black hole qubit correspondence (BHQC) from quantum circuits, taking into account the use of gate operations with base in the formulation of wrapped brane qubits. We interpret these quantum circuits with base on the BHQC classification of entanglement classes and apply in specific examples as the generation of Bell, GHZ states, quantum circuit teleportation and consider the implementation of interchanges in SUSY, black hole configurations, Freudenthal and rank system constructions. These results are discussed from the superstring viewpoint showing that the importance of the construction of the physical states formed by the entanglement of geometrical entities by cohomological operations automatically allows the preservation of different amounts of SUSY in the compactification process given an alternative to the case when fluxes are introduced in the game: the generalized Calabi-Yau of Hitchin.
5 pages, 8 figures
References in corpus (11)
- Four-qubit entanglement from string theory
- Black Holes, Qubits and Octonions
- Strings, Black Holes, and Quantum Information
- On the Black-Hole/Qubit Correspondence
- A Gravity Dual and LHC Study of Single-Sector Supersymmetry Breaking
- Wrapped branes as qubits
- Emergent Calabi-Yau Geometry
- A three-qubit interpretation of BPS and non-BPS STU black holes
- Information metric from Riemannian superspaces
- STU attractors from vanishing concurrence
- Quantum Gravity: physics from supergeometries
Cited by in corpus (4)
- Qubit Transport Model for Unitary Black Hole Evaporation without Firewalls
- Graph Theory and Qubit Information Systems of Extremal Black Branes
- Peccei-Quinn Transformations and Black Holes : Orbit Transmutations and Entanglement Generation
- Quantum circuit simulation of black hole evaporation and Maxwell demon interpretation