2022
DOI: 10.48550/arxiv.2203.17164
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Recovering models of open quantum systems from data via polynomial optimization: Towards globally convergent quantum system identification

Abstract: Current quantum devices suffer imperfections as a result of fabrication, as well as noise and dissipation as a result of coupling to their immediate environments. Because of this, it is often difficult to obtain accurate models of their dynamics from first principles. An alternative is to extract such models from time-series measurements of their behavior. Here, we formulate this systemidentification problem as a polynomial optimization problem. Recent advances in optimization have provided globally convergent… Show more

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