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Improved bounded-strength decoupling schemes for local Hamiltonians

arXiv
Authors: Adam D. Bookatz, Martin Roetteler, Pawel Wocjan

Year

2015

Paper ID

27493

Status

Preprint

Abstract Read

~2 min

Abstract Words

157

Citations

N/A

Abstract

We address the task of switching off the Hamiltonian of a system by removing all internal and system-environment couplings. We propose dynamical decoupling schemes, that use only bounded-strength controls, for quantum many-body systems with local system Hamiltonians and local environmental couplings. To do so, we introduce the combinatorial concept of balanced-cycle orthogonal arrays (BOAs) and show how to construct them from classical error-correcting codes. The derived decoupling schemes may be useful as a primitive for more complex schemes, e.g., for Hamiltonian simulation. For the case of n qubits and a 2-local Hamiltonian, the length of the resulting decoupling scheme scales as O\(n log n\), improving over the previously best-known schemes that scaled quadratically with n. More generally, using balanced-cycle orthogonal arrays constructed from families of BCH codes, we show that bounded-strength decoupling for any ell-local Hamiltonian, where ell geq 2, can be achieved using decoupling schemes of length at most O\(nell-1 log n\).

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  • This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
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  • We address the task of switching off the Hamiltonian of a system by removing all internal and system-environment couplings.

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