Biomimetic Cloning of Quantum Observables
arXiv:1312.3559 · doi:10.1038/srep04910
Abstract
We propose a bio-inspired sequential quantum protocol for the cloning and preservation of the statistics associated to quantum observables of a given system. It combines the cloning of a set of commuting observables, permitted by the no-cloning and no-broadcasting theorems, with a controllable propagation of the initial state coherences to the subsequent generations. The protocol mimics the scenario in which an individual in an unknown quantum state copies and propagates its quantum information into an environment of blank qubits. Finally, we propose a realistic experimental implementation of this protocol in trapped ions.
6+2 pages, 3 figures, Published in Scientific Reports
References in corpus (2)
Cited by in corpus (20)
- Basic protocols in quantum reinforcement learning with superconducting circuits
- Quantum Artificial Life in an IBM Quantum Computer
- Towards Pricing Financial Derivatives with an IBM Quantum Computer
- Genetic Algorithms for Digital Quantum Simulations
- Quantum autoencoders via quantum adders with genetic algorithms
- Quantum Memristors in Quantum Photonics
- Quantum machine learning and quantum biomimetics: A perspective
- Artificial Life in Quantum Technologies
- Degree of Quantumness in Quantum Synchronization
- Quantum Genetic Algorithm with Individuals in Multiple Registers
- Simultaneous Measurement of Two Quantum Observables: Compatibility, Broadcasting, and In-between
- Entanglement Classification with Algebraic Geometry
- Quantized Three-Ion-Channel Neuron Model for Neural Action Potentials
- Quantized Single-Ion-Channel Hodgkin-Huxley Model for Quantum Neurons
- Self-replication of a quantum artificial organism driven by single-photon pulses
- Quantum vs classical genetic algorithms: A numerical comparison shows faster convergence
- Algorithmic quantum simulation of memory effects
- Layers of classicality in the compatibility of measurements
- Adaptive Random Quantum Eigensolver
- Quantum approximated cloning-assisted density matrix exponentiation