ManQala: Game-inspired strategies for quantum state engineering

Author:

Danaci Onur12ORCID,Zhang Wenlei3ORCID,Coleman Robert1ORCID,Djakam William4ORCID,Amoo Michaela1,Glasser Ryan T.3ORCID,Kirby Brian T.35,N'Gom Moussa6ORCID,Searles Thomas A.7ORCID

Affiliation:

1. IBM-HBCU Quantum Center, Howard University 1 , Washington, District of Columbia 20059, USA

2. Instituut-Lorentz, Universiteit Leiden 2 , 2300 RA Leiden, The Netherlands

3. Department of Physics & Engineering Physics, Tulane University 3 , New Orleans, Louisiana 70118, USA

4. Department of Electrical & Computer Engineering, University of Alabama-Birmingham 4 , Birmingham, Alabama 35233, USA

5. DEVCOM Army Research Laboratory 5 , Adelphi, Maryland 20783, USA

6. Department of Physics, Applied Physics, and Astronomy, Rensselaer Polytechnic Institute 6 , Troy, New York 12180, USA

7. Department of Electrical & Computer Engineering, University of Illinois Chicago 7 , Chicago, Illinois 60607, USA

Abstract

The ability to prepare systems in specific target states through quantum engineering is essential for realizing the new technologies promised by a second quantum revolution. Here, we recast the fundamental problem of state preparation in high-dimensional Hilbert spaces as ManQala, a quantum game inspired by the West African sowing game mancala. Motivated by optimal gameplay in solitaire mancala, where nested nearest-neighbor permutations and actions evolve the state of the game board to its target configuration, ManQala acts as a pre-processing approach for deterministically arranging particles in a quantum control problem. Once pre-processing with ManQala is complete, existing quantum control methods are applied, but now with a reduced search space. We find that ManQala-type strategies match, or outperform, competing approaches in terms of final state variance even in small-scale quantum state engineering problems where we expect the slightest advantage, since the relative reduction in search space is the least. These results suggest that ManQala provides a rich platform for designing control protocols relevant to quantum technologies.

Funder

International Business Machines Corporation

Army Research Office

U.S. Department of Energy

Publisher

American Vacuum Society

Subject

Electrical and Electronic Engineering,Computational Theory and Mathematics,Physical and Theoretical Chemistry,Computer Networks and Communications,Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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