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Structure optimization for parameterized quantum circuits

2019/05/31 by Mateusz Ostaszewski, Edward Grant, Marcello Benedetti · 2 citations
Physics and Astronomy · #quant-ph

paper · pdf · doi:10.22331/q-2021-01-28-391

published as Quantum 5, 391 (2021) · 13 pages, 6 figures. Added section "Optimization of circuits with limited expressibility". The previous version was titled "Quantum circuit structure learning"

arxiv created 2021/01/27 · arxiv updated 2021/02/03

Abstract

We propose an efficient method for simultaneously optimizing both the structure and parameter values of quantum circuits with only a small computational overhead. Shallow circuits that use structure optimization perform significantly better than circuits that use parameter updates alone, making this method particularly suitable for noisy intermediate-scale quantum computers. We demonstrate the method for optimizing a variational quantum eigensolver for finding the ground states of Lithium Hydride and the Heisenberg model in simulation, and for finding the ground state of Hydrogen gas on the IBM Melbourne quantum computer.

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