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    Secure Quantum Ranging

    Yunkai Wang1,2,3,*, Graeme Smith2,3,†, and Alex May1,2,‡

    • *Contact author: ywang10@perimeterinstitute.ca
    • †Contact author: graeme.smith@uwaterloo.ca
    • ‡Contact author: amay@perimeterinstitute.ca

    Phys. Rev. Lett. 135, 260802 – Published 22 December, 2025

    DOI: https://doi.org/10.1103/7p1t-gfq2

    Abstract

    Determining and verifying an object’s position is a fundamental task with broad practical relevance. We propose a secure quantum ranging protocol that combines quantum ranging with quantum position verification (QPV). Our method achieves Heisenberg-limited precision in position estimation while simultaneously detecting potential cheaters. Two verifiers each send out a state that is entangled in frequency space within a single optical mode. An honest prover only needs to perform simple beam-splitter operations, whereas cheaters are allowed to use arbitrary linear optical operations, one ancillary mode, and perfect quantum memories—though without access to entanglement. Our approach considers a previously unstudied security aspect to quantum ranging. It also provides a framework to quantify the precision with which a prover’s position can be verified in QPV, which previously has been assumed to be infinite. We further discuss the near-term experimental implementation of our scheme and propose how a better-than-classical advantage can be observed using existing photonic technologies.

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