Abstract
MSSM-like string models from the compactification of the heterotic string on toroidal orbifolds (of the kind (Formula presented.)) have distinct phenomenological properties, like the spectrum of vector-like exotics, the scale of supersymmetry breaking, and the existence of non-Abelian flavor symmetries. We show that these characteristics depend crucially on the choice of the underlying orbifold point group P. In detail, we use boosted decision trees to predict P from phenomenological properties of MSSM-like orbifold models. As this works astonishingly well, we can utilize machine learning to predict the orbifold origin of the MSSM.
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Parr, E., Vaudrevange, P. K. S., & Wimmer, M. (2020). Predicting the Orbifold Origin of the MSSM. Fortschritte Der Physik, 68(5). https://doi.org/10.1002/prop.202000032
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