Split-State Non-Malleable Codes and Secret Sharing Schemes for Quantum Messages
Naresh Goud Boddu, Vipul Goyal, Rahul Jain, Jo\~ao Ribeiro

TL;DR
This paper introduces quantum-secure split-state non-malleable codes and secret sharing schemes that protect quantum messages against adversaries with shared entanglement, extending classical models to the quantum setting with explicit constructions.
Contribution
It defines and constructs the first split-state non-malleable codes and secret sharing schemes for quantum messages secure against quantum adversaries with shared entanglement.
Findings
Constructed low-error quantum split-state non-malleable codes.
Achieved high message length and low error with explicit schemes.
Provided efficient encoding and decoding procedures.
Abstract
Non-malleable codes are fundamental objects at the intersection of cryptography and coding theory. These codes provide security guarantees even in settings where error correction and detection are impossible, and have found applications to several other cryptographic tasks. One of the strongest and most well-studied adversarial tampering models is -split-state tampering. Here, a codeword is split into two parts and the adversary can then independently tamper with each part using arbitrary functions. This model can be naturally extended to the secret sharing setting with several parties by having the adversary independently tamper with each share. Previous works on non-malleable coding and secret sharing in the split-state tampering model only considered the encoding of \emph{classical} messages. Furthermore, until recent work by Aggarwal, Boddu, and Jain (IEEE Trans.\ Inf.\ Theory…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum Mechanics and Applications
