Refinement through restraint: bringing down the cost of verification

Author:

O'Connor Liam1,Chen Zilin1,Rizkallah Christine2,Amani Sidney1,Lim Japheth3,Murray Toby4,Nagashima Yutaka3,Sewell Thomas1,Klein Gerwin1

Affiliation:

1. UNSW, Australia / Data61, Australia

2. University of Pennsylvania, USA

3. Data61, Australia

4. University of Melbourne, Australia

Abstract

We present a framework aimed at significantly reducing the cost of verifying certain classes of systems software, such as file systems. Our framework allows for equational reasoning about systems code written in our new language, Cogent. Cogent is a restricted, polymorphic, higher-order, and purely functional language with linear types and without the need for a trusted runtime or garbage collector. Linear types allow us to assign two semantics to the language: one imperative, suitable for efficient C code generation; and one functional, suitable for equational reasoning and verification. As Cogent is a restricted language, it is designed to easily interoperate with existing C functions and to connect to existing C verification frameworks. Our framework is based on certifying compilation: For a well-typed Cogent program, our compiler produces C code, a high-level shallow embedding of its semantics in Isabelle/HOL, and a proof that the C code correctly refines this embedding. Thus one can reason about the full semantics of real-world systems code productively and equationally, while retaining the interoperability and leanness of C. The compiler certificate is a series of language-level proofs and per-program translation validation phases, combined into one coherent top-level theorem in Isabelle/HOL.

Funder

DARPA

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design,Software

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1. Melocoton: A Program Logic for Verified Interoperability Between OCaml and C;Proceedings of the ACM on Programming Languages;2023-10-16

2. WaVe: a verifiably secure WebAssembly sandboxing runtime;2023 IEEE Symposium on Security and Privacy (SP);2023-05

3. Dargent: A Silver Bullet for Verified Data Layout Refinement;Proceedings of the ACM on Programming Languages;2023-01-09

4. A Lightweight Formalism for Reference Lifetimes and Borrowing in Rust;ACM Transactions on Programming Languages and Systems;2021-03-31

5. Ready, Set, Verify! Applying hs-to-coq to real-world Haskell code;Journal of Functional Programming;2021

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