Christian Majenz

dblp:186/7796 · DBLP profile ↗
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23ranked-venue papers
2as first author
16since 2021 · last 2025
0000-0002-1877-8385ORCID · verified

Domains — the database's venue-derived domains; a paper can count in several

Security and privacy · 20 · 1 first-author · 13 since 2021Theory of computation · 3 · 1 first-author · 3 since 2021
YearPublicationVenuePosition
2025 Hybrid-Query Bounds with Partial Input Control Framework and Application to Tight M-eTCR
Andreas Hülsing, Mikhail A. Kudinov, Christian Majenz
ASIACRYPT (8)3
2025 Shorter, Tighter, FAESTer: Optimizations and Improved (QROM) Analysis for VOLE-in-the-Head Signatures
Carsten Baum, Ward Beullens, Lennart Braun, Cyprien Delpech de Saint Guilhem, Michael Klooß, Christian Majenz, Shibam Mukherjee, Emmanuela Orsini, Sebastian Ramacher, Christian Rechberger, Lawrence Roy, Peter Scholl
CRYPTO (6)6
2025 (Un)breakable Curses - Re-encryption in the Fujisaki-Okamoto Transform
Kathrin Hövelmanns, Andreas Hülsing, Christian Majenz, Fabrizio Sisinni
EUROCRYPT (2)3
2025 The Sponge Is Quantum Indifferentiable
abstract
The sponge is a cryptographic construction that turns a public permutation into a hash function. When the Keccak permutation is used, the resulting design constitutes the Secure Hash Algorithm 3 (SHA-3), standardized by the National Institute of Standards and Technology (NIST). SHA-3 is a core component of most post-quantum public-key cryptography schemes slated for worldwide adoption. While one can consider many security properties for the sponge, the ultimate one is indifferentiability from a random oracle, or simply indifferentiability. The sponge was proved indifferentiable against classical adversaries by Bertoni et al. in 2008. Despite significant efforts in the years since, little is known about sponge security against quantum adversaries, even for simple properties like preimage or collision resistance beyond a single round. This is primarily due to the lack of a satisfactory quantum analog of the lazy sampling technique for permutations. In this work, we develop a specialized technique that overcomes this barrier in the case of the sponge. We prove that the sponge is in fact indifferentiable from a random oracle against quantum adversaries. Our result establishes that the domain extension technique behind SHA-3 is secure in the post-quantum setting. Our indifferentiability bound for the sponge is a loose, but we also give bounds on preimage and collision resistance that are tighter.
Gorjan Alagic, Joseph Carolan, Christian Majenz, Saliha Tokat
FOCS3
2025 Permutation Superposition Oracles for Quantum Query Lower Bounds
Christian Majenz, Giulio Malavolta, Michael Walter 0005
STOC1
2024 On Round Elimination for Special-Sound Multi-round Identification and the Generality of the Hypercube for MPCitH
Andreas Hülsing, David Joseph, Christian Majenz, Anand Kumar Narayanan
CRYPTO (1)3
2024 Provable Security Against Decryption Failure Attacks from LWE
Christian Majenz, Fabrizio Sisinni
CRYPTO (2)1
2024 Post-quantum Security of Tweakable Even-Mansour, and Applications
Gorjan Alagic, Jonathan Katz, Christian Majenz, Patrick Struck
EUROCRYPT (1)4
2024 A Note on Failing Gracefully: Completing the Picture for Explicitly Rejecting Fujisaki-Okamoto Transforms Using Worst-Case Correctness
Kathrin Hövelmanns, Christian Majenz
PQCrypto (2)2
2023 SDitH in the QROM
Carlos Aguilar Melchor, Andreas Hülsing, David Joseph, Christian Majenz, Eyal Ronen, Dongze Yue
ASIACRYPT (7)4
2023 An Algebraic Attack Against McEliece-like Cryptosystems Based on BCH codes
abstract
We present an algebraic attack on a McEliece-like scheme based on BCH codes (BCH-McEliece), where the Goppa code is replaced by a suitably permuted BCH code. Our attack continues the line of work devising attacks against McEliece-like schemes with Goppa-like codes, with the goal of getting a better understanding of why Goppa codes are so intractable. Our starting point is the work of Faugère, Perret and Portzamparc (Asiacrypt 2014). We take their algebraic model and adapt and improve their attack algorithm so that it can handle BCH-McEliece. We demonstrate experimentally that our attack is practical for high rate codes over non-prime fields for parameters where generic attacks suggest cryptographic security.
Freja Elbro, Christian Majenz
ITW2
2022 Failing Gracefully: Decryption Failures and the Fujisaki-Okamoto Transform
Kathrin Hövelmanns, Andreas Hülsing, Christian Majenz
ASIACRYPT (4)3
2022 Efficient NIZKs and Signatures from Commit-and-Open Protocols in the QROM
Jelle Don, Serge Fehr, Christian Majenz, Christian Schaffner
CRYPTO (2)3
2022 Post-Quantum Security of the Even-Mansour Cipher
Gorjan Alagic, Jonathan Katz, Christian Majenz
EUROCRYPT (3)4
2022 Online-Extractability in the Quantum Random-Oracle Model
Jelle Don, Serge Fehr, Christian Majenz, Christian Schaffner
EUROCRYPT (3)3
2021 Tight Adaptive Reprogramming in the QROM
Alex Bredariol Grilo, Kathrin Hövelmanns, Andreas Hülsing, Christian Majenz
ASIACRYPT (1)4
2020 The Measure-and-Reprogram Technique 2.0: Multi-round Fiat-Shamir and More
Jelle Don, Serge Fehr, Christian Majenz
CRYPTO (3)3
2020 Quantum-Access-Secure Message Authentication via Blind-Unforgeability
Gorjan Alagic, Christian Majenz, Alexander Russell, Fang Song 0001
EUROCRYPT (3)2
2020 Efficient Simulation of Random States and Random Unitaries
Gorjan Alagic, Christian Majenz, Alexander Russell
EUROCRYPT (3)2
2020 Secure Multi-party Quantum Computation with a Dishonest Majority
Yfke Dulek, Alex Bredariol Grilo, Stacey Jeffery, Christian Majenz, Christian Schaffner
EUROCRYPT (3)4
2019 Security of the Fiat-Shamir Transformation in the Quantum Random-Oracle Model
Jelle Don, Serge Fehr, Christian Majenz, Christian Schaffner
CRYPTO (2)3
2018 Unforgeable Quantum Encryption
Gorjan Alagic, Tommaso Gagliardoni, Christian Majenz
EUROCRYPT (3)3
2017 Quantum Non-malleability and Authentication
Gorjan Alagic, Christian Majenz
CRYPTO (2)2