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      Global Symmetries, Counterterms, and Duality in Chern-Simons Matter Theories with Orthogonal Gauge Groups

      1 , 2 , 1
      SciPost Physics
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          Abstract

          We study three-dimensional gauge theories based on orthogonal groups. Depending on the global form of the group these theories admit discrete \theta -parameters, which control the weights in the sum over topologically distinct gauge bundles. We derive level-rank duality for these topological field theories. Our results may also be viewed as level-rank duality for SO(N)_{K} Chern-Simons theory in the presence of background fields for discrete global symmetries. In particular, we include the required counterterms and analysis of the anomalies. We couple our theories to charged matter and determine how these counterterms are shifted by integrating out massive fermions. By gauging discrete global symmetries we derive new boson-fermion dualities for vector matter, and present the phase diagram of theories with two-index tensor fermions, thus extending previous results for SO(N) to other global forms of the gauge group.

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          Conformal Field Theory

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            Topological gauge theories and group cohomology

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              Spectral asymmetry and Riemannian Geometry. I

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                Author and article information

                Journal
                SciPost Physics
                SciPost Phys.
                Stichting SciPost
                2542-4653
                2018
                April 29 2018
                : 4
                : 4
                Affiliations
                [1 ]Institute for Advanced Study, Princeton University
                [2 ]Princeton University
                Article
                10.21468/SciPostPhys.4.4.021
                efc72e7d-863e-418c-a4f5-70540fc319c8
                © 2018

                This work is licensed under a Creative Commons Attribution 4.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/

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                Physics
                Physics

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