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      Supplementary information for "Quantum supremacy using a programmable superconducting processor"

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          Abstract

          This is the updated supplementary information to accompany "Quantum supremacy using a programmable superconducting processor", an article published in the October 24, 2019 issue of Nature. The main article is freely available at https://www.nature.com/articles/s41586-019-1666-5 Summary of changes relative to the supplementary information dated October 8, 2019: Ref [49] is now published; Correction of notation and definition for variational distance in Sec XI B. Correction of corresponding equation in footnote (Ref [101]); Down-sampling of images in Figs. S1 and S4 to comply with arXiv storage limit; Miscellaneous typographical corrections; Clarification in Fig. S8 caption; URL for experimental data repository added to Ref [54], https://doi.org/10.5061/dryad.k6t1rj8

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          Strong coupling of a single photon to a superconducting qubit using circuit quantum electrodynamics.

          The interaction of matter and light is one of the fundamental processes occurring in nature, and its most elementary form is realized when a single atom interacts with a single photon. Reaching this regime has been a major focus of research in atomic physics and quantum optics for several decades and has generated the field of cavity quantum electrodynamics. Here we perform an experiment in which a superconducting two-level system, playing the role of an artificial atom, is coupled to an on-chip cavity consisting of a superconducting transmission line resonator. We show that the strong coupling regime can be attained in a solid-state system, and we experimentally observe the coherent interaction of a superconducting two-level system with a single microwave photon. The concept of circuit quantum electrodynamics opens many new possibilities for studying the strong interaction of light and matter. This system can also be exploited for quantum information processing and quantum communication and may lead to new approaches for single photon generation and detection.
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            Randomized benchmarking of quantum gates

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              The computational complexity of linear optics

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                Author and article information

                Journal
                23 October 2019
                Article
                10.1038/s41586-019-1666-5
                1910.11333
                fb62bc4e-51dc-4b05-b797-01c39be23598

                http://arxiv.org/licenses/nonexclusive-distrib/1.0/

                History
                Custom metadata
                Nature, Vol 574, 505 (2019)
                66 pages, 50 figures
                quant-ph

                Quantum physics & Field theory
                Quantum physics & Field theory

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