Kirchhoff-Law Johnson Noise Meets Web 3.0: A Statistical Physical Method of Random Key Generation for Decentralized Identity Protocols
Cryptography and Security
2023-12-29 v1
Abstract
This paper presents a statistical physical generation of random keys for a decentralized identity ecosystem that uses Web 3.0 protocols. Web 3.0 is driven by secure keys, typically represented in hexadecimal, that are pseudo-randomly generated by an initialization vector and complex computational algorithms. We demonstrate that the statistical physical Kirchhoff-law-Johnson-noise (KLJN) scheme eliminates the additional computational power by naturally generating truly random binary keys to drive the creation of decentralized identifiers (DIDs) that are appended to an Ethereum blockchain.
Keywords
Cite
@article{arxiv.2312.17113,
title = {Kirchhoff-Law Johnson Noise Meets Web 3.0: A Statistical Physical Method of Random Key Generation for Decentralized Identity Protocols},
author = {Christiana Chamon and Kamalesh Mohanasundar and Sarah A. Flanery and Francis K. Quek},
journal= {arXiv preprint arXiv:2312.17113},
year = {2023}
}
Comments
arXiv admin note: substantial text overlap with arXiv:2312.12268; text overlap with arXiv:2110.03088, arXiv:2112.09052