Comparing coherent and incoherent models for quantum homogenization

Author:

Beever Anna1ORCID,Violaris Maria12ORCID,Marletto Chiara1,Vedral Vlatko1

Affiliation:

1. Clarendon Laboratory, University of Oxford

2. Mathematical Institute, University of Oxford

Abstract

Here we investigate the role of quantum interference in the quantum homogenizer, whose convergence properties model a thermalization process. In the original quantum homogenizer protocol, a system qubit converges to the state of identical reservoir qubits through partial-swap interactions, that allow interference between reservoir qubits. We design an alternative, incoherent quantum homogenizer, where each system-reservoir interaction is moderated by a control qubit using a controlled-swap interaction. We show that our incoherent homogenizer satisfies the essential conditions for homogenization, being able to transform a qubit from any state to any other state to arbitrary accuracy, with negligible impact on the reservoir qubits' states. Our results show that the convergence properties of homogenization machines that are important for modeling thermalization are not dependent on coherence between qubits in the homogenization protocol. We then derive bounds on the resources required to re-use the homogenizers for performing state transformations. This demonstrates that both homogenizers are universal for any number of homogenizations, for an increased resource cost. Published by the American Physical Society 2024

Funder

Gordon and Betty Moore Foundation

Eutopia Foundation

Publisher

American Physical Society (APS)

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