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Machine-Checked Proofs for Cryptographic Standards: Indifferentiability of Sponge and Secure High-Assurance Implementations of SHA-3.

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The Last Mile: High-Assurance and High-Speed Cryptographic Implementations., , , , , , , and . SP, page 965-982. IEEE, (2020)Towards Formal Verification of Password Generation Algorithms used in Password Managers., , and . CoRR, (2021)Deductive Verification of Cryptographic Software., , , and . NASA Formal Methods, volume NASA/CP-2009-215407 of NASA Conference Proceedings, page 146-155. (2009)Machine-Checked Proofs for Cryptographic Standards: Indifferentiability of Sponge and Secure High-Assurance Implementations of SHA-3., , , , , , , , , and . CCS, page 1607-1622. ACM, (2019)Certified Compilation for Cryptography: Extended x86 Instructions and Constant-Time Verification., , , , and . INDOCRYPT, volume 12578 of Lecture Notes in Computer Science, page 107-127. Springer, (2020)The Last Mile: High-Assurance and High-Speed Cryptographic Implementations., , , , , , , and . CoRR, (2019)Bounded Version Vectors., , and . DISC, volume 3274 of Lecture Notes in Computer Science, page 102-116. Springer, (2004)Machine-checked ZKP for NP relations: Formally Verified Security Proofs and Implementations of MPC-in-the-Head., , , , , , and . CCS, page 2587-2600. ACM, (2021)Verifying Cryptographic Software Correctness with Respect to Reference Implementations., , , and . FMICS, volume 5825 of Lecture Notes in Computer Science, page 37-52. Springer, (2009)A Machine-Checked Proof of Security for AWS Key Management Service., , , , , , , , , and . CCS, page 63-78. ACM, (2019)