Program synthesis from polymorphic refinement types

N. Polikarpova, Armando Solar-Lezama
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引用次数: 224

Abstract

We present a method for synthesizing recursive functions that provably satisfy a given specification in the form of a polymorphic refinement type. We observe that such specifications are particularly suitable for program synthesis for two reasons. First, they offer a unique combination of expressive power and decidability, which enables automatic verification—and hence synthesis—of nontrivial programs. Second, a type-based specification for a program can often be effectively decomposed into independent specifications for its components, causing the synthesizer to consider fewer component combinations and leading to a combinatorial reduction in the size of the search space. At the core of our synthesis procedure is a newalgorithm for refinement type checking, which supports specification decomposition. We have evaluated our prototype implementation on a large set of synthesis problems and found that it exceeds the state of the art in terms of both scalability and usability. The tool was able to synthesize more complex programs than those reported in prior work (several sorting algorithms and operations on balanced search trees), as well as most of the benchmarks tackled by existing synthesizers, often starting from a more concise and intuitive user input.
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从多态细化类型合成程序
我们提出了一种以多态细化类型的形式合成可证明满足给定规范的递归函数的方法。我们观察到,由于两个原因,这种规范特别适合于程序合成。首先,它们提供了表达能力和可判定性的独特组合,从而支持对重要程序的自动验证,并因此进行综合。其次,程序的基于类型的规范通常可以有效地分解为其组件的独立规范,从而使合成器考虑更少的组件组合,并导致搜索空间大小的组合减小。我们的合成过程的核心是一个用于细化类型检查的新算法,它支持规范分解。我们在大量的综合问题上评估了我们的原型实现,发现它在可伸缩性和可用性方面都超过了目前的水平。该工具能够合成比以前的工作报告(几种排序算法和平衡搜索树的操作)更复杂的程序,以及现有合成器处理的大多数基准,通常从更简洁和直观的用户输入开始。
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