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Hardware Architecture for a Quantum Computer Trusted Execution Environment

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arxiv 2308.03897 v1 pith:D4GP2LQP submitted 2023-08-07 cs.ET quant-ph

classification cs.ETquant-ph
keywords quantumcircuitshardwarepulsesarchitecturecomputerdatausers
verification ladder T0 review T1 audit T2 compute T3 formal

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abstract

The cloud-based environments in which today's and future quantum computers will operate, raise concerns about the security and privacy of user's intellectual property. Quantum circuits submitted to cloud-based quantum computer providers represent sensitive or proprietary algorithms developed by users that need protection. Further, input data is hard-coded into the circuits, and leakage of the circuits can expose users' data. To help protect users' circuits and data from possibly malicious quantum computer cloud providers, this work presented the first hardware architecture for a trusted execution environment for quantum computers. To protect the user's circuits and data, the quantum computer control pulses are obfuscated with decoy control pulses. While digital data can be encrypted, analog control pulses cannot and this paper proposed the novel decoy pulse approach to obfuscate the analog control pulses. The proposed decoy pulses can easily be added to the software by users. Meanwhile, the hardware components of the architecture proposed in this paper take care of eliminating, i.e. attenuating, the decoy pulses inside the superconducting quantum computer's dilution refrigerator before they reach the qubits. The hardware architecture also contains tamper-resistant features to protect the trusted hardware and users' information. The work leverages a new metric of variational distance to analyze the impact and scalability of hardware protection. The variational distance of the circuits protected with our scheme, compared to unprotected circuits, is in the range of only $0.16$ to $0.26$. This work demonstrates that protection from possibly malicious cloud providers is feasible and all the hardware components needed for the proposed architecture are available today.

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Forward citations

Cited by 2 Pith papers

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

  1. Access Control Threatened by Quantum Entanglement

    quant-ph 2025-07 reject novelty 7.0 of 10

    A classically secure access control system is shown to leak user secrets with certainty once quantum registers and local quantum memory are allowed, motivating new entanglement-aware access control models.

  2. E-LoQ: Enhanced Locking for Quantum Circuit IP Protection

    quant-ph 2024-12 conditional novelty 6.0 of 10

    A single-key-qubit locking scheme encodes multiple key bits as a time-ordered sequence of control gates, hiding a quantum circuit from an untrusted compiler.

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