VLDB 2026 Research / reviewers in the wild / expert
Rune Fiedler
dblp:281/5493
· DBLP profile ↗
6ranked-venue papers
4as first author
6since 2021 · last 2025
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 6 · 4 first-author · 6 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | sfXHMQV: Better Efficiency and Stronger Security for Signal's Initial Handshake based on HMQV
Rune Fiedler, Felix Günther 0001, Jiaxin Pan 0001, Runzhi Zeng |
CRYPTO (8) | 1 |
| 2025 | On Deniable Authentication Against Malicious Verifiers
Rune Fiedler, Roman Langrehr |
CRYPTO (8) | 1 |
| 2025 | Security Analysis of Signal's PQXDH Handshake
Rune Fiedler, Felix Günther 0001 |
PKC (2) | 1 |
| 2024 | BUFFing FALCON Without Increasing the Signature Size
Samed Düzlü, Rune Fiedler, Marc Fischlin |
SAC (1) | 2 |
| 2024 | A Deniability Analysis of Signal's Initial Handshake PQXDHabstractMany use messaging apps such as Signal to exercise their right to private communication. To cope with the advent of quantum computing, Signal employs a new initial handshake protocol called PQXDH for post-quantum confidentiality, yet keeps guarantees of authenticity and deniability classical. Compared to its predecessor X3DH, PQXDH includes a KEM encapsulation and a signature on the ephemeral key. In this work we show that PQXDH does not meet the same deniability guarantees as X3DH due to the signature on the ephemeral key. Our analysis relies on plaintext awareness of the KEM, which Signal's implementation of PQXDH does not provide. As for X3DH, both parties (initiator and responder) obtain different deniability guarantees due to the asymmetry of the protocol. For our analysis of PQXDH, we introduce a new model for deniability of key exchange that allows a more fine-grained analysis. Our deniability model picks up on the ideas of prior work and facilitates new combinations of deniability notions, such as deniability against malicious adversaries in the big brother model, i.e. where the distinguisher knows all secret keys. Our model may be of independent interest. Rune Fiedler, Christian Janson |
Proc. Priv. Enhancing Technol. | 1 |
| 2021 | BUFFing signature schemes beyond unforgeability and the case of post-quantum signaturesabstractModern digital signature schemes can provide more guarantees than the standard notion of (strong) unforgeability, such as offering security even in the presence of maliciously generated keys, or requiring to know a message to produce a signature for it. The use of signature schemes that lack these properties has previously enabled attacks on real-world protocols. In this work we revisit several of these notions beyond unforgeability, establish relations among them, provide the first formal definition of non re-signability, and a transformation that can provide these properties for a given signature scheme in a provable and efficient way.Our results are not only relevant for established schemes: for example, the ongoing NIST PQC competition towards standardizing post-quantum signature schemes has six finalists in its third round. We perform an in-depth analysis of the candidates with respect to their security properties beyond unforgeability. We show that many of them do not yet offer these stronger guarantees, which implies that the security guarantees of these post-quantum schemes are not strictly stronger than, but instead incomparable to, classical signature schemes. We show how applying our transformation would efficiently solve this, paving the way for the standardized schemes to provide these additional guarantees and thereby making them harder to misuse. Cas Cremers, Samed Düzlü, Rune Fiedler, Marc Fischlin, Christian Janson |
SP | 3 |