Abstract

We introduce information-theoretically private quantum protocols for two-party Hamming distance when both parties must output the same estimate. Classically, for input length $n$, information-theoretic protocols require $Ω(\sqrt{n})$ error under pure differential privacy and $Ω(\sqrt{n}/\log n)$ error under strong approximate differential privacy, whereas computational security permits $O(1)$ error. In Klauck's honest, nonpreemptive, message-preserving model, we give an $O(n)$-communication quantum protocol with pure $\varepsilon$ quantum differential privacy (QDP) and expected error at most $\frac{2}{\sinh \varepsilon}+γ$, for every $γ>0$. For approximate $(\varepsilon, δ)$ QDP, an exact hockey-stick divergence calculation yields strictly smaller error, while preserving the $O(1)$-versus-$Ω(\sqrt{n}/\log n)$ separation for $δ=o(1/n)$. Thus, quantum communication achieves $O(1)$ information-theoretic error, matching the accuracy available classically only under computational assumptions. The main construction uses a guarded coherent round trip and an equal-Gram rigidity principle that prevents an honest player from retaining input-dependent complementary information. We separate this model from weaker prescribed-channel privacy, which already admits an exact classical realization, and from fully retention-robust security, against which measurement-and-abort attacks remain possible. Therefore, we identify preservation of non-orthogonal quantum messages as a resource for privacy.

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Cite this article

APA 7

Alabi, D., & Khabiboulline, E. T. (2026). Quantum Advantage for Two-Party Differential Privacy. https://omanscience.com/en/articles/quantum-advantage-for-two-party-differential-privacy

MLA 9

Alabi, Daniel, and Emil T. Khabiboulline. "Quantum Advantage for Two-Party Differential Privacy." https://omanscience.com/en/articles/quantum-advantage-for-two-party-differential-privacy.

Chicago (author–date)

Alabi, Daniel, and Emil T. Khabiboulline. 2026. "Quantum Advantage for Two-Party Differential Privacy." https://omanscience.com/en/articles/quantum-advantage-for-two-party-differential-privacy.

Harvard

Alabi, D. and Khabiboulline, E. T. (2026) 'Quantum Advantage for Two-Party Differential Privacy', Available at: https://omanscience.com/en/articles/quantum-advantage-for-two-party-differential-privacy.

Vancouver

Alabi D, Khabiboulline ET. Quantum Advantage for Two-Party Differential Privacy. https://omanscience.com/en/articles/quantum-advantage-for-two-party-differential-privacy

IEEE

D. Alabi, and E. T. Khabiboulline, "Quantum Advantage for Two-Party Differential Privacy," https://omanscience.com/en/articles/quantum-advantage-for-two-party-differential-privacy.