Preprint

·2020 OPEN ACCESS

A Polynomial Interpolation based Quantum Key Reconciliation Protocol: Error Correction without Information Leakage

Güneş Karabulut Kurt , Enver Ozdemır , Neslihan Ayşen Özkirişçi YTU , Ozan Alp Topal YTU , Emel Aslankarayiğit Uğurlu

arXiv (Cornell University)

Abstract

In this work, we propose a novel key reconciliation protocol for the quantum key distribution (QKD). Based on Newton's polynomial interpolation, the proposed protocol aims to correct all erroneous bits at the receiver without revealing information to the eavesdropper. We provide the exact frame error rate (FER) expression of the proposed protocol. The inherent nature of the proposed algorithm ensures correcting all erroneous bits if the algorithm succeeds. We present an information-theoretical proof that the revealed information during the key reconciliation process is equal to zero. We also provide a numerical comparison of our algorithm with the asymptotic performance of the error-correcting codes and two exemplary low-density-parity-check (LDPC) codes. The results highlight that our algorithm provides superior performance when compared to the LDPC codes, regardless of the distance between Alice and Bob. Furthermore, the proposed key reconciliation protocol is usable for the longer quantum link distances than the state-of-the-art protocols.

Keywords

Leakage (economics) Information leakage Protocol (science) Computer science Polynomial Interpolation (computer graphics) Polynomial interpolation Key (lock) Quantum Algorithm Theoretical computer science Computer network Mathematics Computer security Linear interpolation Physics Quantum mechanics Mathematical analysis Medicine

Subject Areas

Quantum Information and Cryptography ·Artificial Intelligence ·Physical Sciences
Quantum Computing Algorithms and Architecture ·Artificial Intelligence ·Physical Sciences
Quantum Mechanics and Applications ·Atomic and Molecular Physics, and Optics ·Physical Sciences

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