14 research outputs found

    Program Verification in the Presence of I/O

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    Software veri?cation tools that build machine-checked proofs of functional correctness usually focus on the algorithmic content of the code. Their proofs are not grounded in a formal semantic model of the environment that the program runs in, or the program’s interaction with that environment. As a result, several layers of translation and wrapper code must be trusted. In contrast, the CakeML project focuses on endto-end veri?cation to replace this trusted code with veri?ed code in a cost-e?ective manner. In this paper, we present infrastructure for developing and verifying impure functional programs with I/O and imperative ?le handling. Specifically, we extend CakeML with a low-level model of ?le I/O, and verify a high-level ?le I/O library in terms of the model. We use this library to develop and verify several Unix-style command-line utilities: cat, sort, grep, di? and patch. The work?ow we present is built around the HOL4 theorem prover, and therefore all our results have machine-checked proofs

    GOSPEL -Providing OCaml with a Formal Specification Language

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    International audienceThis paper introduces GOSPEL, a behavioral specification language for OCaml. It is designed to enable modular verification of data structures and algorithms. GOSPEL is a contract-based, strongly typed language, with a formal semantics defined by means of translation into Separation Logic. Compared with writing specifications directly in Separation Logic, GOSPEL provides a high-level syntax that greatly improves conciseness and makes it accessible to programmers with no familiarity with Separation Logic. Although GOSPEL has been developed for specifying OCaml code, we believe that many aspects of its design could apply to other programming languages. This paper presents the design and semantics of GOSPEL, and reports on its application for the development of a formally verified library of general-purpose OCaml data structures
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