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Machine Learning Class Numbers of Real Quadratic Fields

19 September 2022
Malik Amir
Yang-Hui He
Kyu-Hwan Lee
Thomas Oliver
E. Sultanow
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Abstract

We implement and interpret various supervised learning experiments involving real quadratic fields with class numbers 1, 2 and 3. We quantify the relative difficulties in separating class numbers of matching/different parity from a data-scientific perspective, apply the methodology of feature analysis and principal component analysis, and use symbolic classification to develop machine-learned formulas for class numbers 1, 2 and 3 that apply to our dataset.

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