Jiayu Xu 0001

dblp:177/2270-1 · DBLP profile ↗
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19ranked-venue papers
0as first author
12since 2021 · last 2026
0000-0002-0881-9980ORCID · conflict

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

Security and privacy · 19 · 12 since 2021Theory of computation · 2 · 1 since 2021
YearPublicationVenuePosition
2026 Two-Factor Authentication Can Harden Servers Against Offline Password Search
Xavier Boyen, Stanislaw Jarecki, Phillip Nazarian, Jiayu Xu 0001, Tianyu Zheng
EUROCRYPT (2)4
2026 Conditionally Input-Revealing 2PC and Fuzzy Password-Authenticated Key Exchange
Mike Rosulek, Jiayu Xu 0001
EUROCRYPT (2)3
2025 How to Tolerate Typos in Strong Asymmetric PAKE
Ian McQuoid, Mike Rosulek, Jiayu Xu 0001
CRYPTO (3)3
2025 Under What Conditions Is Encrypted Key Exchange Actually Secure?
Jake Januzelli, Lawrence Roy, Jiayu Xu 0001
EUROCRYPT (2)3
2024 Password-Protected Threshold Signatures
Stefan Dziembowski, Stanislaw Jarecki, Pawel Kedzior, Hugo Krawczyk, Chan Nam Ngo, Jiayu Xu 0001
ASIACRYPT (3)6
2024 Threshold PAKE with Security Against Compromise of All Servers
Yanqi Gu, Stanislaw Jarecki, Pawel Kedzior, Phillip Nazarian, Jiayu Xu 0001
ASIACRYPT (5)5
2023 An Efficient Strong Asymmetric PAKE Compiler Instantiable from Group Actions
Ian McQuoid, Jiayu Xu 0001
ASIACRYPT (8)2
2023 Classical and Quantum Security of Elliptic Curve VRF, via Relative Indifferentiability
Chris Peikert, Jiayu Xu 0001
CT-RSA2
2022 Spreading the Privacy Blanket: - Differentially Oblivious Shuffling for Differential Privacy
S. Dov Gordon, Jonathan Katz, Mingyu Liang, Jiayu Xu 0001
ACNS4
2022 The Abe-Okamoto Partially Blind Signature Scheme Revisited
Julia Kastner 0001, Julian Loss, Jiayu Xu 0001
ASIACRYPT (4)3
2022 How to Obfuscate MPC Inputs
Ian McQuoid, Mike Rosulek, Jiayu Xu 0001
TCC (2)3
2021 Algebraic Adversaries in the Universal Composability Framework
Michel Abdalla, Manuel Barbosa, Jonathan Katz, Julian Loss, Jiayu Xu 0001
ASIACRYPT (3)5
2020 Universally Composable Relaxed Password Authenticated Key Exchange
Michel Abdalla, Manuel Barbosa, Tatiana Bradley, Stanislaw Jarecki, Jonathan Katz, Jiayu Xu 0001
CRYPTO (1)6
2020 On the Security of Time-Lock Puzzles and Timed Commitments
Jonathan Katz, Julian Loss, Jiayu Xu 0001
TCC (3)3
2019 Password-Authenticated Public-Key Encryption
Tatiana Bradley, Jan Camenisch, Stanislaw Jarecki, Anja Lehmann, Gregory Neven, Jiayu Xu 0001
ACNS6
2019 Strong Asymmetric PAKE Based on Trapdoor CKEM
Tatiana Bradley, Stanislaw Jarecki, Jiayu Xu 0001
CRYPTO (3)3
2018 OPAQUE: An Asymmetric PAKE Protocol Secure Against Pre-computation Attacks
Stanislaw Jarecki, Hugo Krawczyk, Jiayu Xu 0001
EUROCRYPT (3)3
2017 TOPPSS: Cost-Minimal Password-Protected Secret Sharing Based on Threshold OPRF
Stanislaw Jarecki, Aggelos Kiayias, Hugo Krawczyk, Jiayu Xu 0001
ACNS4
2016 Highly-Efficient and Composable Password-Protected Secret Sharing (Or: How to Protect Your Bitcoin Wallet Online)
abstract
PPSS is a central primitive introduced by Bagherzandi et al. [2] which allows a user to store a secret among n servers such that the user can later reconstruct the secret with the sole possession of a single password by contacting t + 1 (t <; n) servers. At the same time, an attacker breaking into t of these servers - and controlling all communication channels - learns nothing about the secret (or the password). Thus, PPSS schemes are ideal for on-line storing of valuable secrets when retrieval solely relies on a memorizable password. We show the most efficient Password-Protected Secret Sharing (PPSS) to date (and its implied Threshold-PAKE scheme), which is optimal in round communication as in Jarecki et al. [10] but which improves computation and communication complexity over that scheme requiring a single per-server exponentiation for the client and a single exponentiation for the server. As with the schemes from [10] and Camenisch et al. [4] we do not require secure channels or PKI other than in the initialization stage. We prove the security of our PPSS scheme in the Universally Composable (UC) model. For this we present a UC definition of PPSS that relaxes the UC formalism of [4] in a way that enables more efficient PPSS schemes (by dispensing with the need to extract the user's password in the simulation) and present a UC-based definition of Oblivious PRF (OPRF) that is more general than the (Verifiable) OPRF definition from [10] and is also crucial for enabling our performance optimization.
Stanislaw Jarecki, Aggelos Kiayias, Hugo Krawczyk, Jiayu Xu 0001
EuroS&P4