Resetting Uncontrolled Quantum Systems

We consider a scenario where we wish to bring a closed system of known Hilbert space dimension d_{S} (the target), subject to an unknown Hamiltonian evolution, back to its quantum state at a past time t_{0}. The target is out of our control: This means that we ignore both its free Hamiltonian and ho...

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Main Author: Miguel Navascués
Format: Article
Language:English
Published: American Physical Society 2018-07-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.8.031008
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author Miguel Navascués
author_facet Miguel Navascués
author_sort Miguel Navascués
collection DOAJ
description We consider a scenario where we wish to bring a closed system of known Hilbert space dimension d_{S} (the target), subject to an unknown Hamiltonian evolution, back to its quantum state at a past time t_{0}. The target is out of our control: This means that we ignore both its free Hamiltonian and how the system interacts with other quantum systems we may use to influence it. Under these conditions, we prove that there exist protocols within the framework of nonrelativistic quantum physics that reset the target system to its exact quantum state at t_{0}. Each “resetting protocol” is successful with nonzero probability for all possible free Hamiltonians and interaction unitaries, save a subset of zero measure. When the target is a qubit and the interaction is sampled from the Haar measure, the simplest resetting circuits have a significant average probability of success and their implementation is within reach of current quantum technologies. Finally, we find that, in case the resetting protocol fails, it is possible to run a further protocol that, if successful, undoes both the natural evolution of the target and the effects of the failed protocol over the latter. By chaining in this fashion several such protocols, one can substantially increase the overall probability of a successful resetting.
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spelling doaj.art-c9335cafd06c40a8879d098b0de4d8c52022-12-21T19:23:31ZengAmerican Physical SocietyPhysical Review X2160-33082018-07-018303100810.1103/PhysRevX.8.031008Resetting Uncontrolled Quantum SystemsMiguel NavascuésWe consider a scenario where we wish to bring a closed system of known Hilbert space dimension d_{S} (the target), subject to an unknown Hamiltonian evolution, back to its quantum state at a past time t_{0}. The target is out of our control: This means that we ignore both its free Hamiltonian and how the system interacts with other quantum systems we may use to influence it. Under these conditions, we prove that there exist protocols within the framework of nonrelativistic quantum physics that reset the target system to its exact quantum state at t_{0}. Each “resetting protocol” is successful with nonzero probability for all possible free Hamiltonians and interaction unitaries, save a subset of zero measure. When the target is a qubit and the interaction is sampled from the Haar measure, the simplest resetting circuits have a significant average probability of success and their implementation is within reach of current quantum technologies. Finally, we find that, in case the resetting protocol fails, it is possible to run a further protocol that, if successful, undoes both the natural evolution of the target and the effects of the failed protocol over the latter. By chaining in this fashion several such protocols, one can substantially increase the overall probability of a successful resetting.http://doi.org/10.1103/PhysRevX.8.031008
spellingShingle Miguel Navascués
Resetting Uncontrolled Quantum Systems
Physical Review X
title Resetting Uncontrolled Quantum Systems
title_full Resetting Uncontrolled Quantum Systems
title_fullStr Resetting Uncontrolled Quantum Systems
title_full_unstemmed Resetting Uncontrolled Quantum Systems
title_short Resetting Uncontrolled Quantum Systems
title_sort resetting uncontrolled quantum systems
url http://doi.org/10.1103/PhysRevX.8.031008
work_keys_str_mv AT miguelnavascues resettinguncontrolledquantumsystems