Proofs of sequential communication delays from physical assumptions and their applications
Artikel i vetenskaplig tidskrift, 2025

Time-based cryptographic primitives unlock efficient realizations of several functionalities including Randomness Beacons, Proof of Replicated Storage, Encryption to the Future, and MultiParty Computation with partial fairness. Existing constructions derive time-delays from the average hardness of sequential computational problems, a measure that is susceptible to algorithmic and hardware improvements. Therefore time-based systems secure at deployment date are at constant risk to turn insecure. A way to combat this intrinsic drawback is to ground time-delays on assumptions that are not affected by scientific advancement such as trust (in a subset of parties) and physical communication delays. This paper builds on Baum et al.'s (SCN 2024) work on "CaSCaDE: (Time-Based) Cryptography from Space Communications DElay", and provides concrete realizations and detailed security proofs of: a Time Lock Puzzle, a stateless Verifiable Random Function, a Delay Encryption scheme, and a Randomness Beacon from proofs of Sequential Communication Delays (SCD) and trust assumptions on subsets of parties. Notably, our SCD-based Delay Encryption construction constitutes the first alternative to existing supersingular isogenies Delay Encryption schemes.

Verifiable delay functions

Physical assumptions

Time-based cryptography

Time-lock puzzles

Författare

Carsten Baum

Danmarks Tekniske Universitet (DTU)

Bernardo Machado David

IT-Universitetet i Kobenhavn

Elena Pagnin

Chalmers, Data- och informationsteknik, Informationssäkerhet

Göteborgs universitet

Akira Takahashi

J.P. Morgan Chase

Cryptography and Communications

1936-2447 (ISSN) 1936-2455 (eISSN)

Vol. In Press

Gradvis kryptografiska verifierings mekanismer

Vetenskapsrådet (VR) (2022-04684), 2023-01-01 -- 2026-12-31.

Ämneskategorier (SSIF 2025)

Datavetenskap (datalogi)

DOI

10.1007/s12095-025-00828-0

Mer information

Senast uppdaterat

2025-08-21