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Generating Triangulations and Fibrations with Reinforcement Learning

Authors :
Berglund, Per
Butbaia, Giorgi
He, Yang-Hui
Heyes, Elli
Hirst, Edward
Jejjala, Vishnu
Publication Year :
2024

Abstract

We apply reinforcement learning (RL) to generate fine regular star triangulations of reflexive polytopes, that give rise to smooth Calabi-Yau (CY) hypersurfaces. We demonstrate that, by simple modifications to the data encoding and reward function, one can search for CYs that satisfy a set of desirable string compactification conditions. For instance, we show that our RL algorithm can generate triangulations together with holomorphic vector bundles that satisfy anomaly cancellation and poly-stability conditions in heterotic compactification. Furthermore, we show that our algorithm can be used to search for reflexive subpolytopes together with compatible triangulations that define fibration structures of the CYs.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2405.21017
Document Type :
Working Paper