EDBT 2026 Demo / reviewers in the wild / expert
Hanni Ding
dblp:344/9624
· DBLP profile ↗
3ranked-venue papers
0as first author
3since 2021 · last 2025
—ORCID · none
Domains — the database's venue-derived domains; a paper can count in several
Security and privacy · 3 · 3 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2025 | Threshold Signatures With Verifiably Timed Combining and Message-Dependent Tracing
Meng Li 0006, Hanni Ding, Yifei Chen 0005, Yan Qiao 0001, Zijian Zhang 0001, Liehuang Zhu, Mauro Conti |
IEEE Trans. Inf. Forensics Secur. | 2 |
| 2024 | Threshold Signatures with Private Accountability via Secretly Designated Witnesses
Meng Li 0006, Hanni Ding, Qing Wang 0060, Zijian Zhang 0001, Mauro Conti |
ACISP (1) | 2 |
| 2024 | Decentralized Threshold Signatures With Dynamically Private AccountabilityabstractThreshold signature is a fundamental cryptographic primitive used in many practical applications. As proposed by Boneh and Komlo (CRYPTO’22), TAPS is a threshold signature that is a hybrid of privacy and accountability. It enables a combiner to combine$t$signature shares while revealing nothing about the threshold$t$or signing quorum to the public and asks a tracer to track a signature to the quorum that generates it. However, TAPS has three disadvantages: it 1) structures upon a centralized model, 2) assumes that both combiner and tracer are honest, and 3) leaves the tracing unnotarized and static. In this work, we introduce Decentralized, Threshold, dynamically Accountable and Private Signature (DeTAPS) that provides decentralized combining and tracing, enhanced privacy against untrusted combiners (tracers), and notarized and dynamic tracing. Specifically, we adopt Dynamic Threshold Public-Key Encryption (DTPKE) to dynamically notarize the tracing process, design non-interactive zero knowledge proofs to achieve public verifiability of notaries, and utilize the Key-Aggregate Searchable Encryption to bridge TAPS and DTPKE so as to awaken the notaries securely and efficiently. In addition, we formalize the definitions and security requirements for DeTAPS. Then we present a concrete construction and formally prove its security and privacy. To evaluate the performance, we build a prototype based on SGX2 and Ethereum. Meng Li 0006, Hanni Ding, Qing Wang 0060, Weizhi Meng 0001, Liehuang Zhu, Zijian Zhang 0001, Xiaodong Lin 0001 |
IEEE Trans. Inf. Forensics Secur. | 2 |