2024
DOI: 10.3847/2041-8213/ad5970
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Class Symbolic Regression: Gotta Fit ’Em All

Wassim Tenachi,
Rodrigo Ibata,
Thibaut L. François
et al.

Abstract: We introduce “Class Symbolic Regression” (Class SR), the first framework for automatically finding a single analytical functional form that accurately fits multiple data sets—each realization being governed by its own (possibly) unique set of fitting parameters. This hierarchical framework leverages the common constraint that all the members of a single class of physical phenomena follow a common governing law. Our approach extends the capabilities of our earlier Physical Symbolic Optimization (Φ-SO) framework… Show more

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