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Analyzing constrained LLM through PDFA-learning

12 June 2024
Matías Carrasco
Franz Mayr
S. Yovine
Johny Kidd
Martín Iturbide
Juan da Silva
Alejo Garat
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Abstract

We define a congruence that copes with null next-symbol probabilities that arise when the output of a language model is constrained by some means during text generation. We develop an algorithm for efficiently learning the quotient with respect to this congruence and evaluate it on case studies for analyzing statistical properties of LLM.

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