A Generic Methodology for the Modular Verification of Security Protocol Implementations (extended version)
December 05, 2022 Β· Declared Dead Β· π Conference on Computer and Communications Security
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Authors
Linard Arquint, Malte Schwerhoff, Vaibhav Mehta, Peter MΓΌller
arXiv ID
2212.02626
Category
cs.CR: Cryptography & Security
Cross-listed
cs.PL
Citations
8
Venue
Conference on Computer and Communications Security
Last Checked
5 months ago
Abstract
Security protocols are essential building blocks of modern IT systems. Subtle flaws in their design or implementation may compromise the security of entire systems. It is, thus, important to prove the absence of such flaws through formal verification. Much existing work focuses on the verification of protocol *models*, which is not sufficient to show that their *implementations* are actually secure. Verification techniques for protocol implementations (e.g., via code generation or model extraction) typically impose severe restrictions on the used programming language and code design, which may lead to sub-optimal implementations. In this paper, we present a methodology for the modular verification of strong security properties directly on the level of the protocol implementations. Our methodology leverages state-of-the-art verification logics and tools to support a wide range of implementations and programming languages. We demonstrate its effectiveness by verifying memory safety and security of Go implementations of the Needham-Schroeder-Lowe, Diffie-Hellman key exchange, and WireGuard protocols, including forward secrecy and injective agreement for WireGuard. We also show that our methodology is agnostic to a particular language or program verifier with a prototype implementation for C.
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