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Exploration of Quantum Computer Power Side-Channels

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arxiv 2304.03315 v2 pith:QZCQAJQS submitted 2023-04-06 cs.CR quant-ph

classification cs.CRquant-ph
keywords computersquantumattackscontrolcircuitsinformationphysicalwork
verification ladder T0 review T1 audit T2 compute T3 formal
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With the rapidly growing interest in quantum computing also grows the importance of securing these quantum computers from various physical attacks. Constantly increasing qubit counts and improvements to the fidelity of the quantum computers hold great promise for the ability of these computers to run novel algorithms with highly sensitive intellectual property. However, in today's cloud-based quantum computer setting, users lack physical control over the computers. Physical attacks, such as those perpetrated by malicious insiders in data centers, could be used to extract sensitive information about the circuits being executed on these computers. Indeed, this work shows for the first time that power-based side-channel attacks could be deployed against quantum computers. Such attacks can be used to recover information about the control pulses sent to these computers. By analyzing these control pulses, attackers can reverse-engineer the equivalent gate-level description of the circuits, and possibly even the secret algorithms being run. This work introduces five new types of attacks, and evaluates them using control pulse information available from cloud-based quantum computers. This work demonstrates how and what circuits could be recovered, and then in turn how to defend from the newly demonstrated side-channel attacks on quantum~computers.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Magnetohydrodynamic drag on an oscillating sphere in a rotating spherical cavity

    physics.flu-dyn 2026-04 unverdicted novelty 6.0 of 10

    A unified asymptotic theory for oscillatory magnetohydrodynamic drag on a sphere in a rotating spherical cavity, covering confinement, viscosity, rotation and magnetic coupling, with DNS checks.

  2. Hardware-Agnostic Modeling of Quantum Side-Channel Leakage via Conditional Dynamics and Learning from Full Correlation Data

    quant-ph 2026-02 reject novelty 4.0 of 10

    For a controlled-rotation probe, gate-sequence leakage is predicted to peak at θ*(k)=2 arcsin(√(2/(k+2))), but the paper provides neither a derivation of the envelope nor the experimental data supporting the prediction.

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