Guillermo Pascual-Perez

dblp:215/6233 · DBLP profile ↗
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8ranked-venue papers
0as first author
8since 2021 · last 2025
0000-0001-8630-415XORCID · corroborated

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

Security and privacy · 8 · 8 since 2021Theory of computation · 4 · 4 since 2021
YearPublicationVenuePosition
2025 Exploring How to Authenticate Application Messages in MLS: More Efficient, Post-Quantum, and Anonymous Blocklistable
Keitaro Hashimoto, Shuichi Katsumata, Guillermo Pascual-Perez
USENIX Security Symposium3
2024 The Cost of Maintaining Keys in Dynamic Groups with Applications to Multicast Encryption and Group Messaging
Michael Anastos, Benedikt Auerbach, Mirza Ahad Baig, Miguel Cueto Noval, Matthew Kwan 0001, Guillermo Pascual-Perez, Krzysztof Pietrzak
TCC (1)6
2023 Generic-Group Lower Bounds via Reductions Between Geometric-Search Problems: With and Without Preprocessing
Benedikt Auerbach, Charlotte Hoffmann, Guillermo Pascual-Perez
TCC (3)3
2023 On the Cost of Post-compromise Security in Concurrent Continuous Group-Key Agreement
Benedikt Auerbach, Miguel Cueto Noval, Guillermo Pascual-Perez, Krzysztof Pietrzak
TCC (3)3
2022 CoCoA: Concurrent Continuous Group Key Agreement
Joël Alwen, Benedikt Auerbach, Miguel Cueto Noval, Karen Azari, Guillermo Pascual-Perez, Krzysztof Pietrzak, Michael Walter 0001
EUROCRYPT (2)5
2021 Inverse-Sybil Attacks in Automated Contact Tracing
Benedikt Auerbach, Suvradip Chakraborty, Karen Azari, Guillermo Pascual-Perez, Krzysztof Pietrzak, Michael Walter 0001, Michelle Yeo
CT-RSA4
2021 Keep the Dirt: Tainted TreeKEM, Adaptively and Actively Secure Continuous Group Key Agreement
abstract
While messaging systems with strong security guarantees are widely used in practice, designing a protocol that scales efficiently to large groups and enjoys similar security guarantees remains largely open. The two existing proposals to date are ART (Cohn-Gordon et al., CCS18) and TreeKEM (IETF, The Messaging Layer Security Protocol, draft). TreeKEM is the currently considered candidate by the IETF MLS working group, but dynamic group operations (i.e. adding and removing users) can cause efficiency issues. In this paper we formalize and analyze a variant of TreeKEM which we term Tainted TreeKEM (TTKEM for short). The basic idea underlying TTKEM was suggested by Millican (MLS mailing list, February 2018). This version is more efficient than TreeKEM for some natural distributions of group operations, we quantify this through simulations.Our second contribution is two security proofs for TTKEM which establish post compromise and forward secrecy even against adaptive attackers. The security loss (to the underlying PKE) in the Random Oracle Model is a polynomial factor, and a quasipolynomial one in the Standard Model. Our proofs can be adapted to TreeKEM as well. Before our work no security proof for any TreeKEM-like protocol establishing tight security against an adversary who can adaptively choose the sequence of operations was known. We also are the first to prove (or even formalize) active security where the server can arbitrarily deviate from the protocol specification. Proving fully active security – where also the users can arbitrarily deviate – remains open.
Karen Azari, Guillermo Pascual-Perez, Michael Walter 0001, Chethan Kamath, Margarita Capretto, Miguel Cueto Noval, Ilia Markov, Michelle Yeo, Joël Alwen, Krzysztof Pietrzak
SP2
2021 Grafting Key Trees: Efficient Key Management for Overlapping Groups
Joël Alwen, Benedikt Auerbach, Mirza Ahad Baig, Miguel Cueto Noval, Karen Azari, Guillermo Pascual-Perez, Krzysztof Pietrzak, Michael Walter 0001
TCC (3)6