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Fast Deterministic Black-box Context-free Grammar Inference

Mohammad Rifat Arefin, Suraj Shetiya, Zili Wang, Christoph Csallner

Abstract

Black-box context-free grammar inference is a hard problem as in many practical settings it only has access to a limited number of example programs. The state-of-the-art approach Arvada heuristically generalizes grammar rules starting from flat parse trees and is non-deterministic to explore different generalization sequences. We observe that many of Arvada's generalization steps violate common language concept nesting rules. We thus propose to pre-structure input programs along these nesting rules, apply learnt rules recursively, and make black-box context-free grammar inference deterministic. The resulting TreeVada yielded faster runtime and higher-quality grammars in an empirical comparison. The TreeVada source code, scripts, evaluation parameters, and training data are open-source and publicly available (https://doi.org/10.6084/m9.figshare.23907738).

BibTeX
@inproceedings{Arefin-al:ICSE24,
  author    = {Mohammad Rifat Arefin and
               Suraj Shetiya and
               Zili Wang and
               Christoph Csallner},
  title     = {Fast Deterministic Black-box Context-free Grammar Inference},
  booktitle = {ICSE},
  pages     = {117:1--117:12},
  publisher = {{ACM}},
  year      = {2024},
}

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