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Modular code-based cryptographic verification

  • Microsoft Research
  • MSR-INRIA

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Résumé

Type systems are effective tools for verifying the security of cryptographic programs. They provide automation, modularity and scalability, and have been applied to large security protocols. However, they traditionally rely on abstract assumptions on the underlying cryptographic primitives, expressed in symbolic models. Cryptographers usually reason on security assumptions using lower level, computational models that precisely account for the complexity and success probability of attacks. These models are more realistic, but they are harder to formalize and automate. We present the first modular automated program verification method based on standard cryptographic assumptions. We show how to verify ideal functionalities and protocols written in ML by typing them against new cryptographic interfaces using F7, a refinement type checker coupled with an SMT-solver. We develop a probabilistic core calculus for F7 and formalize its type safety in COQ. We build typed module and interfaces for MACs, signatures, and encryptions, and establish their authenticity and secrecy properties. We relate their ideal functionalities and concrete implementations, using game-based program transformations behind typed interfaces. We illustrate our method on a series of protocol implementations.

langue originaleAnglais
titreCCS'11 - Proceedings of the 18th ACM Conference on Computer and Communications Security
Pages341-350
Nombre de pages10
Les DOIs
étatPublié - 14 nov. 2011
Modification externeOui
Evénement18th ACM Conference on Computer and Communications Security, CCS'11 - Chicago, IL, États-Unis
Durée: 17 oct. 201121 oct. 2011

Série de publications

NomProceedings of the ACM Conference on Computer and Communications Security
ISSN (imprimé)1543-7221

Une conférence

Une conférence18th ACM Conference on Computer and Communications Security, CCS'11
Pays/TerritoireÉtats-Unis
La villeChicago, IL
période17/10/1121/10/11

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