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

, , , , , , , , , and . CCS, page 1607-1622. ACM, (2019)

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Relational ⋆⋆\star-Liftings for Differential Privacy., , , , and . Log. Methods Comput. Sci., (2019)Formal proofs of transcendence for e and pi as an application of multivariate and symmetric polynomials., , , and . CPP, page 76-87. ACM, (2016)A relational logic for higher-order programs., , , , and . J. Funct. Program., (2019)EasyPQC: Verifying Post-Quantum Cryptography., , , , , , , , and . CCS, page 2564-2586. ACM, (2021)The Last Mile: High-Assurance and High-Speed Cryptographic Implementations., , , , , , , and . SP, page 965-982. IEEE, (2020)Coupling proofs are probabilistic product programs., , , and . CoRR, (2016)hacspec: Towards Verifiable Crypto Standards., , and . SSR, volume 11322 of Lecture Notes in Computer Science, page 1-20. Springer, (2018)Machine-Checked Proofs for Cryptographic Standards., , , , , , , , , and . IACR Cryptol. ePrint Arch., (2019)Coq without Type Casts: A Complete Proof of Coq Modulo Theory., and . LPAR, volume 46 of EPiC Series in Computing, page 474-489. EasyChair, (2017)Jasmin: High-Assurance and High-Speed Cryptography., , , , , , , , , and . CCS, page 1807-1823. ACM, (2017)