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Stealthy SWAPs: Adversarial SWAP Injection in Multi-Tenant Quantum Computing

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arxiv 2310.17426 v1 pith:I6FI3JA5 submitted 2023-10-26 quant-ph

classification quant-ph
keywords quantumcomputinghardwareswapadversarialapproximatelybeeninjection
verification ladder T0 review T1 audit T2 compute T3 formal
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Quantum computing (QC) holds tremendous promise in revolutionizing problem-solving across various domains. It has been suggested in literature that 50+ qubits are sufficient to achieve quantum advantage (i.e., to surpass supercomputers in solving certain class of optimization problems).The hardware size of existing Noisy Intermediate-Scale Quantum (NISQ) computers have been ever increasing over the years. Therefore, Multi-tenant computing (MTC) has emerged as a potential solution for efficient hardware utilization, enabling shared resource access among multiple quantum programs. However, MTC can also bring new security concerns. This paper proposes one such threat for MTC in superconducting quantum hardware i.e., adversarial SWAP gate injection in victims program during compilation for MTC. We present a representative scheduler designed for optimal resource allocation. To demonstrate the impact of this attack model, we conduct a detailed case study using a sample scheduler. Exhaustive experiments on circuits with varying depths and qubits offer valuable insights into the repercussions of these attacks. We report a max of approximately 55 percent and a median increase of approximately 25 percent in SWAP overhead. As a countermeasure, we also propose a sample machine learning model for detecting any abnormal user behavior and priority adjustment.

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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. SQUASH: A SWAP-Based Quantum Attack to Sabotage Hybrid Quantum Neural Networks

    quant-ph 2025-06 reject novelty 4.0 of 10

    Inserting SWAP gates into the variational circuit of a hybrid quantum neural network degrades classification accuracy by up to roughly 74%, with targeted insertions able to ruin a single class's accuracy.

  2. Adversarial Threats in Quantum Machine Learning: A Survey of Attacks and Defenses

    quant-ph 2025-06 conditional novelty 1.0 of 10

    A survey that categorizes known adversarial threats to quantum machine learning systems and reviews existing defenses, from logic locking to hardware-aware watermarking.

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