SWAPPER: A framework for automatic generation of formula simplifiers based on conditional rewrite rules

Rohit Singh, Armando Solar-Lezama
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引用次数: 15

Abstract

This paper addresses the problem of creating simplifiers for logic formulas based on conditional term rewriting. In particular, the paper focuses on a program synthesis application where formula simplifications have been shown to have a significant impact. We show that by combining machine learning techniques with constraint-based synthesis, it is possible to synthesize a formula simplifier fully automatically from a corpus of representative problems, making it possible to create formula simplifiers tailored to specific problem domains. We demonstrate the benefits of our approach for synthesis benchmarks from the SyGuS competition and automated grading.
SWAPPER:一个基于条件重写规则自动生成公式简化器的框架
本文讨论了基于条件项重写的逻辑公式简化器的创建问题。特别地,本文着重于程序合成应用,其中公式简化已被证明具有显著的影响。我们表明,通过将机器学习技术与基于约束的合成相结合,可以从代表性问题的语料库中完全自动地合成公式简化器,从而可以创建适合特定问题领域的公式简化器。我们从SyGuS竞赛和自动评分中展示了我们的合成基准方法的好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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