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Learning Families of Algebraic Structures from Text

  • Nikolay Bazhenov,
  • Ekaterina Fokina,
  • Dino Rossegger,
  • Alexandra Soskova,
  • Stefan Vatev

摘要

We adapt the classical notion of learning from text to computable structure theory. Our main result is a model-theoretic characterization of the learnability from text for classes of structures. We show that a family of structures is learnable from text if and only if the structures can be distinguished in terms of their theories restricted to positive infinitary \(\varSigma _2\) sentences.