Papers › A Neural Model for Regular Grammar Induction

A Neural Model for Regular Grammar Induction

23 Sep 2022arXiv:2209.11628archive 2025-07-28

Peter Belcák, David Hofer, Roger Wattenhofer

Grammatical inference is a classical problem in computational learning theory and a topic of wider influence in natural language processing. We treat grammars as a model of computation and propose a novel neural approach to induction of regular grammars from positive and negative examples. Our model is fully explainable, its intermediate results are directly interpretable as partial parses, and it can be used to learn arbitrary regular grammars when provided with sufficient data. We find that our method consistently attains high recall and precision scores across a range of tests of varying complexity.

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grammar_model_loss pbelcak/neregrain/curriculum.py official repository unverified MIT (permissive) · adb5d701fef615b6 · report
make_data pbelcak/neregrain/data.py official repository unverified MIT (permissive) · 906bcbb207d45d5b · report
test pbelcak/neregrain/curriculum.py official repository unverified MIT (permissive) · fa0fe1f9417fd9e5 · report
train pbelcak/neregrain/curriculum.py official repository unverified MIT (permissive) · 6d9192f2b828c7f6 · report

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