EDBT 2026 Demo / reviewers in the wild / expert
Georg Land
dblp:289/1887
· DBLP profile ↗
6ranked-venue papers
1as first author
6since 2021 · last 2025
0000-0002-1533-3583ORCID · verified
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 6 · 1 first-author · 6 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | To Extend or Not to Extend: Agile Masking Instructions for PQC
Markus Krausz, Georg Land, Florian Stolz, Jan Richter-Brockmann, Tim Güneysu |
CANS | 2 |
| 2024 | Practical Post-Quantum Signatures for PrivacyabstractThe transition to post-quantum cryptography has been an enormous challenge and effort for cryptographers over the last decade, with impressive results such as the future NIST standards. However, the latter has so far only considered central cryptographic mechanisms (signatures or KEM) and not more advanced ones, e.g., targeting privacy-preserving applications. Of particular interest is the family of solutions called blind signatures, group signatures and anonymous credentials, for which standards already exist, and which are deployed in billions of devices. Such a family does not have, at this stage, an efficient post-quantum counterpart although very recent works improved this state of affairs by offering two different alternatives: either one gets a system with rather large elements but a security proved under standard assumptions or one gets a more efficient system at the cost of ad-hoc interactive assumptions or weaker security models. Moreover, all these works have only considered size complexity without implementing the quite complex building blocks their systems are composed of. In other words, the practicality of such systems is still very hard to assess, which is a problem if one envisions a post-quantum transition for the corresponding systems/standards. Sven Argo, Tim Güneysu, Corentin Jeudy, Georg Land, Adeline Roux-Langlois, Olivier Sanders |
CCS | 4 |
| 2023 | Breaking and Protecting the Crystal: Side-Channel Analysis of Dilithium in Hardware
Hauke Malte Steffen, Georg Land, Lucie Johanna Kogelheide, Tim Güneysu |
PQCrypto | 2 |
| 2022 | Proof-of-Possession for KEM Certificates using Verifiable GenerationabstractCertificate authorities in public key infrastructures typically require entities to prove possession of the secret key corresponding to the public key they want certified. While this is straightforward for digital signature schemes, the most efficient solution for public key encryption and key encapsulation mechanisms (KEMs) requires an interactive challenge-response protocol, requiring a departure from current issuance processes. In this work we investigate how to non-interactively prove possession of a KEM secret key, specifically for lattice-based KEMs, motivated by the recently proposed KEMTLS protocol which replaces signature-based authentication in TLS 1.3 with KEM-based authentication. Although there are various zero-knowledge (ZK) techniques that can be used to prove possession of a lattice key, they yield large proofs or are inefficient to generate. We propose a technique called verifiable generation, in which a proof of possession is generated at the same time as the key itself is generated. Our technique is inspired by the Picnic signature scheme and uses the multi-party-computation-in-the-head (MPCitH) paradigm; this similarity to a signature scheme allows us to bind attribute data to the proof of possession, as required by certificate issuance protocols. We show how to instantiate this approach for two lattice-based KEMs in Round 3 of the NIST post-quantum cryptography standardization project, Kyber and FrodoKEM, and achieve reasonable proof sizes and performance. Our proofs of possession are faster and an order of magnitude smaller than the previous best MPCitH technique for knowledge of a lattice key, and in size-optimized cases can be comparable to even state-of-the-art direct lattice-based ZK proofs for Kyber. Our approach relies on a new result showing the uniqueness of Kyber and FrodoKEM secret keys, even if the requirement that all secret key components are small is partially relaxed, which may be of independent interest for improving efficiency of zero-knowledge proofs for other lattice-based statements. Tim Güneysu, Philip W. Hodges, Georg Land, Mike Ounsworth, Douglas Stebila, Gregory M. Zaverucha |
CCS | 3 |
| 2022 | Efficiently Masking Polynomial Inversion at Arbitrary Order
Markus Krausz, Georg Land, Jan Richter-Brockmann, Tim Güneysu |
PQCrypto | 2 |
| 2021 | A Hard Crystal - Implementing Dilithium on Reconfigurable Hardware
Georg Land, Pascal Sasdrich, Tim Güneysu |
CARDIS | 1 |