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Randomized Reversible Gate-Based Obfuscation for Secured Compilation of Quantum Circuit

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arxiv 2305.01133 v2 pith:6QWUTVRO submitted 2023-05-02 quant-ph cs.CR

classification quant-phcs.CR
keywords circuitquantumcircuitsobfuscationcompilersgateshowevermethod
verification ladder T0 review T1 audit T2 compute T3 formal
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The success of quantum circuits in providing reliable outcomes for a given problem depends on the gate count and depth in near-term noisy quantum computers. Quantum circuit compilers that decompose high-level gates to native gates of the hardware and optimize the circuit play a key role in quantum computing. However, the quality and time complexity of the optimization process can vary significantly especially for practically relevant large-scale quantum circuits. As a result, third-party (often less-trusted/untrusted) compilers have emerged, claiming to provide better and faster optimization of complex quantum circuits than so-called trusted compilers. However, untrusted compilers can pose severe security risks, such as the theft of sensitive intellectual property (IP) embedded within the quantum circuit. We propose an obfuscation technique for quantum circuits using randomized reversible gates to protect them from such attacks during compilation. The idea is to insert a small random circuit into the original circuit and send it to the untrusted compiler. Since the circuit function is corrupted, the adversary may get incorrect IP. However, the user may also get incorrect output post-compilation. To circumvent this issue, we concatenate the inverse of the random circuit in the compiled circuit to recover the original functionality. We demonstrate the practicality of our method by conducting exhaustive experiments on a set of benchmark circuits and measuring the quality of obfuscation by calculating the Total Variation Distance (TVD) metric. Our method achieves TVD of up to 1.92 and performs at least 2X better than a previously reported obfuscation method. We also propose a novel adversarial reverse engineering (RE) approach and show that the proposed obfuscation is resilient against RE attacks. The proposed technique introduces minimal degradation in fidelity (~1% to ~3% on average).

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Forward citations

Cited by 3 Pith papers

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

  1. CutBackdoor: A Circuit Cut Triggered Backdoor Attack on Variational Quantum Algorithms

    quant-ph 2026-07 reject novelty 6.0 of 10

    A parameter-supply-chain backdoor triggers when a VQA circuit is cut because the deployment hardware is too small, inflating cut-path energy estimates by 1.3x-2.9x.

  2. On the Figures of Merit for Quantum Software Security: Toward a Benchmarking Rubric

    cs.CR 2026-08 conditional novelty 5.0 of 10

    The paper defines a structured set of Security Figures of Merit and a normalization and aggregation rubric that turns incomparable quantum software security metrics into a composite Quantum Software Security Posture score.

  3. Quantum Trojan Insertion: Controlled Activation for Covert Circuit Manipulation

    quant-ph 2025-02 reject novelty 4.0 of 10

    A proposed controllable quantum Trojan is not actually controllable: the X-gate switch runs on every execution and no input-conditioned dormancy is demonstrated.

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