基于sat抽象的核心最小化

A. Belov, Huan Chen, A. Mishchenko, Joao Marques-Silva
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引用次数: 10

摘要

自动抽象是现代形式化验证流程的重要组成部分。许多有效的基于sat的自动抽象方法使用不满意的核心来指导抽象的构建。在本文中,我们分析了不可满足核心最小化的影响,使用最先进的算法来计算最小不可满足子公式(MUSes),对混合(基于反例和基于证明的)抽象引擎的有效性。我们以经验证明,核心最小化可以显著减少总验证时间,特别是在困难的测试用例上。然而,生成的抽象并不一定更小。我们注意到,通过改变最小化工作,抽象大小可以以一种非琐碎的方式进行控制。基于这一观察,我们进一步减少了总验证时间。
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Core minimization in SAT-based abstraction
Automatic abstraction is an important component of modern formal verification flows. A number of effective SAT-based automatic abstraction methods use unsatisfiable cores to guide the construction of abstractions. In this paper we analyze the impact of unsatisfiable core minimization, using state-of-the-art algorithms for the computation of minimally unsatisfiable subformulas (MUSes), on the effectiveness of a hybrid (counterexample-based and proof-based) abstraction engine. We demonstrate empirically that core minimization can lead to a significant reduction in the total verification time, particularly on difficult testcases. However, the resulting abstractions are not necessarily smaller. We notice that by varying the minimization effort the abstraction size can be controlled in a non-trivial manner. Based on this observation, we achieve a further reduction in the total verification time.
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