English

Quantum Homogenization as a Quantum Steady State Protocol on NISQ Hardware

Quantum Physics 2024-12-20 v1

Abstract

Quantum homogenization is a reservoir-based quantum state approximation protocol, which has been successfully implemented in state transformation on quantum hardware. In this work we move beyond that and propose the homogenization as a novel platform for quantum state stabilization and information protection. Using the Heisenberg exchange interactions formalism, we extend the standard quantum homogenization protocol to the dynamically-equivalent (SWAP\mathtt{SWAP})α^\alpha formulation. We then demonstrate its applicability on available noisy intermediate-scale quantum (NISQ) processors by presenting a shallow quantum circuit implementation consisting of a sequence of CNOT\mathtt{CNOT} and single-qubit gates. In light of this, we employ the Beny-Oreshkov generalization of the Knill-Laflamme (KL) conditions for near-optimal recovery channels to show that our proposed (SWAP\mathtt{SWAP})α^\alpha quantum homogenization protocol yields a completely positive, trace preserving (CPTP) map under which the code subspace is correctable. Therefore, the protocol protects quantum information contained in a subsystem of the reservoir Hilbert space under CPTP dynamics.

Keywords

Cite

@article{arxiv.2412.14544,
  title  = {Quantum Homogenization as a Quantum Steady State Protocol on NISQ Hardware},
  author = {Alexander Yosifov and Aditya Iyer and Daniel Ebler and Vlatko Vedral},
  journal= {arXiv preprint arXiv:2412.14544},
  year   = {2024}
}

Comments

6 pages, 1 figure

R2 v1 2026-06-28T20:41:41.076Z