Adaptively Secure, Universally Composable Distributed Generation of Discrete-Logarithm Based Keys from Standard Assumptions
Paper i proceeding, 2026

Distributed key generation (DKG) protocols enable a set of parties to distributively generate a threshold-shared key pair (pk,sk), such that at least t parties must participate to reconstruct the secret. We introduce the first DKG protocols for discrete-logarithm based keys that are both universally composable and adaptively secure in the random oracle model, without erasure, inconsistent players, interactive assumptions, or oracle-aided simulation. Our contributions are as follows: 1.an adaptively secure, universally composable DKG that achieves guaranteed output delivery in three rounds assuming an honest majority,2.an adaptively secure, universally composable committed DKG that realizes our novel committed DKG functionality in two rounds with identifiable abort for a full corruption threshold, and3.as an application, an incredibly simple threshold Schnorr protocol in the committed DKG-hybrid model, implying a three-round adaptively secure and universally composable threshold Schnorr protocol with identifiable abort for a dishonest majority. Most importantly, our DKG constructions are secure in the random oracle model under the DDH assumption. Our output guarantees are proven under the assumption of synchrony. To date, all existing DKG protocols for discrete-logarithm based keys satisfy weaker security notions or require stronger assumptions. an adaptively secure, universally composable DKG that achieves guaranteed output delivery in three rounds assuming an honest majority, an adaptively secure, universally composable committed DKG that realizes our novel committed DKG functionality in two rounds with identifiable abort for a full corruption threshold, and as an application, an incredibly simple threshold Schnorr protocol in the committed DKG-hybrid model, implying a three-round adaptively secure and universally composable threshold Schnorr protocol with identifiable abort for a dishonest majority.

Författare

Hanna Ek

Chalmers, Data- och informationsteknik, Informationssäkerhet

Kelsey Melissaris

Université Paris Cité

Lawrence Roy

Aarhus Universitet

Lecture Notes in Computer Science

0302-9743 (ISSN) 1611-3349 (eISSN)

Vol. 16801 LNCS 263-295
9783032353733 (ISBN)

46th Annual International Cryptology Conference, CRYPTO 2026
Santa Barbara, USA,

Ämneskategorier (SSIF 2025)

Kommunikationssystem

Datavetenskap (datalogi)

DOI

10.1007/978-3-032-35374-0_9

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Senast uppdaterat

2026-09-10