EDBT 2026 Demo / reviewers in the wild / expert
Andrea Cerulli
dblp:165/8428
· DBLP profile ↗
9ranked-venue papers
1as first author
0since 2021 · last 2020
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 9 · 1 first-author
Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.
| Network and information security
6 papers |
Cryptographic protocols and secure computation · 54% Cryptographic primitives and cryptanalysis · 33% Hardware security and side channels · 13% | |
| Computer architecture, parallel and distributed computing, and storage systems
1 paper |
Hardware reliability and fault tolerance · 100% |
Topics — the 7 heaviest of 8, each with the papers that count most for it
| Topic | Weight | Papers | Last | Evidence papers |
|---|---|---|---|---|
Cryptographic protocols and secure computation › proof systems
zero-knowledge proofs |
1.2 | 4 | 2018 | Sub-linear Lattice-Based Zero-Knowledge Arguments for Arithmetic Circuits · CRYPTO (2) 2018 Arya: Nearly Linear-Time Zero-Knowledge Proofs for Correct Program Execution · ASIACRYPT (1) 2018 Linear-Time Zero-Knowledge Proofs for Arithmetic Circuit Satisfiability · ASIACRYPT (3) 2017 |
Cryptographic primitives and cryptanalysis › public-key cryptography
digital signatures |
0.4 | 1 | 2020 | Foundations of Fully Dynamic Group Signatures · J. Cryptol. 2020 |
Cryptographic primitives and cryptanalysis › public-key cryptography › digital signatures
group signature |
0.4 | 1 | 2020 | Foundations of Fully Dynamic Group Signatures · J. Cryptol. 2020 |
Cryptographic protocols and secure computation › proof systems › zero-knowledge proofs › post-quantum zero-knowledge
lattice-based zero-knowledge proofs |
0.3 | 1 | 2018 | Sub-linear Lattice-Based Zero-Knowledge Arguments for Arithmetic Circuits · CRYPTO (2) 2018 |
Hardware security and side channels › hardware trojan
hardware trojan detection |
0.3 | 1 | 2017 | A Touch of Evil: High-Assurance Cryptographic Hardware from Untrusted Components · CCS 2017 |
Hardware security and side channels
cryptographic hardware |
0.1 | 1 | 2017 | A Touch of Evil: High-Assurance Cryptographic Hardware from Untrusted Components · CCS 2017 |
Cryptographic primitives and cryptanalysis
discrete logarithm setting |
0.1 | 1 | 2016 | Efficient Zero-Knowledge Arguments for Arithmetic Circuits in the Discrete Log Setting · EUROCRYPT (2) 2016 |
Methods — techniques the papers use, named apart from their topics
high-assurance design · 0.6lattice-based cryptography · 0.3discrete logarithm · 0.2arithmetic circuits · 0.2
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2020 | Foundations of Fully Dynamic Group SignaturesabstractAbstract Group signatures allow members of a group to anonymously sign on behalf of the group. Membership is administered by a designated group manager. The group manager can also reveal the identity of a signer if and when needed to enforce accountability and deter abuse. For group signatures to be applicable in practice, they need to support fully dynamic groups, i.e., users may join and leave at any time. Existing security definitions for fully dynamic group signatures are informal, have shortcomings, and are mutually incompatible. We fill the gap by providing a formal rigorous security model for fully dynamic group signatures. Our model is general and is not tailored toward a specific design paradigm and can therefore, as we show, be used to argue about the security of different existing constructions following different design paradigms. Our definitions are stringent and when possible incorporate protection against maliciously chosen keys. We consider both the case where the group management and tracing signatures are administered by the same authority, i.e., a single group manager, and also the case where those roles are administered by two separate authorities, i.e., a group manager and an opening authority. We also show that a specialization of our model captures existing models for static and partially dynamic schemes. In the process, we identify a subtle gap in the security achieved by group signatures using revocation lists. We show that in such schemes new members achieve a slightly weaker notion of traceability. The flexibility of our security model allows to capture such relaxation of traceability. Jonathan Bootle, Andrea Cerulli, Pyrros Chaidos, Essam Ghadafi, Jens Groth |
J. Cryptol. | 2 |
| 2018 | Nothing Refreshes Like a RePSI: Reactive Private Set Intersection
Andrea Cerulli, Emiliano De Cristofaro, Claudio Soriente |
ACNS | 1 |
| 2018 | Arya: Nearly Linear-Time Zero-Knowledge Proofs for Correct Program Execution
Jonathan Bootle, Andrea Cerulli, Jens Groth, Sune K. Jakobsen, Mary Maller |
ASIACRYPT (1) | 2 |
| 2018 | Sub-linear Lattice-Based Zero-Knowledge Arguments for Arithmetic Circuits
Carsten Baum, Jonathan Bootle, Andrea Cerulli, Rafaël Del Pino, Jens Groth, Vadim Lyubashevsky |
CRYPTO (2) | 3 |
| 2017 | Linear-Time Zero-Knowledge Proofs for Arithmetic Circuit Satisfiability
Jonathan Bootle, Andrea Cerulli, Essam Ghadafi, Jens Groth, Mohammad Hajiabadi, Sune K. Jakobsen |
ASIACRYPT (3) | 2 |
| 2017 | A Touch of Evil: High-Assurance Cryptographic Hardware from Untrusted ComponentsabstractThe semiconductor industry is fully globalized and integrated circuits (ICs) are commonly defined, designed and fabricated in different premises across the world. This reduces production costs, but also exposes ICs to supply chain attacks, where insiders introduce malicious circuitry into the final products. Additionally, despite extensive post-fabrication testing, it is not uncommon for ICs with subtle fabrication errors to make it into production systems. While many systems may be able to tolerate a few byzantine components, this is not the case for cryptographic hardware, storing and computing on confidential data. For this reason, many error and backdoor detection techniques have been proposed over the years. So far all attempts have been either quickly circumvented, or come with unrealistically high manufacturing costs and complexity. Vasilios Mavroudis, Andrea Cerulli, Petr Svenda, Daniel Cvrcek, Dusan Klinec, George Danezis |
CCS | 2 |
| 2016 | Foundations of Fully Dynamic Group Signatures
Jonathan Bootle, Andrea Cerulli, Pyrros Chaidos, Essam Ghadafi, Jens Groth |
ACNS | 2 |
| 2016 | Efficient Zero-Knowledge Arguments for Arithmetic Circuits in the Discrete Log Setting
Jonathan Bootle, Andrea Cerulli, Pyrros Chaidos, Jens Groth, Christophe Petit 0001 |
EUROCRYPT (2) | 2 |
| 2015 | Short Accountable Ring Signatures Based on DDHabstractRing signatures and group signatures are prominent cryptographic primitives offering a combination of privacy and authentication. They enable individual users to anonymously sign messages on behalf of a group of users. In ring signatures, the group, i.e. the ring, is chosen in an ad hoc manner by the signer. In group signatures, group membership is controlled by a group manager. Group signatures additionally enforce accountability by providing the group manager with a secret tracing key that can be used to identify the otherwise anonymous signer when needed. Accountable ring signatures, introduced by Xu and Yung (CARDIS 2004), bridge the gap between the two notions. They provide maximal flexibility in choosing the ring, and at the same time maintain accountability by supporting a designated opener that can identify signers when needed. We revisit accountable ring signatures and offer a formal security model for the primitive. Our model offers strong security definitions incorporating protection against maliciously chosen keys and at the same time flexibility both in the choice of the ring and the opener. We give a generic construction using standard tools. We give a highly efficient instantiation of our generic construction in the random oracle model by meticulously combining Camenisch’s group signature scheme (CRYPTO 1997) with a generalization of the one-out-of-many proofs of knowledge by Groth and Kohlweiss (EUROCRYPT 2015). Our instantiation yields signatures of logarithmic size (in the size of the ring) while relying solely on the well-studied decisional Diffie-Hellman assumption. In the process, we offer a number of optimizations for the recent Groth and Kohlweiss one-out-of-many proofs, which may be useful for other applications. Accountable ring signatures imply traditional ring and group signatures. We therefore also obtain highly efficient instantiations of those primitives with signatures shorter than all existing ring signatures as well as existing group signatures relying on standard assumptions. Jonathan Bootle, Andrea Cerulli, Pyrros Chaidos, Essam Ghadafi, Jens Groth, Christophe Petit 0001 |
ESORICS (1) | 2 |