TY - JOUR
T1 - Encrypted-State Quantum Compilation Scheme Based on Quantum Circuit Obfuscation for Quantum Cloud Platforms
AU - Zhang, Chenyi
AU - Shang, Tao
AU - Guo, Xueyi
AU - Zhang, Yuanjing
N1 - Publisher Copyright:
© 2020 IEEE.
PY - 2026
Y1 - 2026
N2 - With the rapid advancement of quantum computing, quantum compilation has become a crucial layer connecting high-level algorithms with physical hardware. In quantum cloud computing, compilation is performed on the cloud platforms, which expose user circuits to potential risks, such as structural leakage and output predictability. To address these issues, we propose the encrypted-state quantum compilation scheme based on quantum circuit obfuscation (ECQCO), the first secure compilation scheme tailored for the co-location of compilers and quantum hardware for quantum cloud platforms. It applies quantum homomorphic encryption to conceal output states and instantiates a structure obfuscation mechanism based on quantum indistinguishability obfuscation, effectively protecting both functionality and topology of the circuit. In addition, an adaptive decoupling obfuscation algorithm is designed to suppress potential idle errors while inserting pulse operations. The proposed scheme achieves information-theoretic security and guarantees computational indistinguishability under the quantum random oracle. Experimental results on benchmark datasets demonstrate that ECQCO achieves a total variation distance of up to 0.7 and a normalized graph edit distance of 0.88, enhancing compilation-stage security. Moreover, it introduces only a slight increase in circuit depth, while keeping the average fidelity change within 1.1%, thus achieving a practical balance between security and efficiency.
AB - With the rapid advancement of quantum computing, quantum compilation has become a crucial layer connecting high-level algorithms with physical hardware. In quantum cloud computing, compilation is performed on the cloud platforms, which expose user circuits to potential risks, such as structural leakage and output predictability. To address these issues, we propose the encrypted-state quantum compilation scheme based on quantum circuit obfuscation (ECQCO), the first secure compilation scheme tailored for the co-location of compilers and quantum hardware for quantum cloud platforms. It applies quantum homomorphic encryption to conceal output states and instantiates a structure obfuscation mechanism based on quantum indistinguishability obfuscation, effectively protecting both functionality and topology of the circuit. In addition, an adaptive decoupling obfuscation algorithm is designed to suppress potential idle errors while inserting pulse operations. The proposed scheme achieves information-theoretic security and guarantees computational indistinguishability under the quantum random oracle. Experimental results on benchmark datasets demonstrate that ECQCO achieves a total variation distance of up to 0.7 and a normalized graph edit distance of 0.88, enhancing compilation-stage security. Moreover, it introduces only a slight increase in circuit depth, while keeping the average fidelity change within 1.1%, thus achieving a practical balance between security and efficiency.
KW - Compilation security
KW - quantum circuit obfuscation
KW - quantum cloud platforms
KW - quantum homomorphic encryption (QHE)
KW - quantum indistinguishability obfuscation (QiO)
UR - https://www.scopus.com/pages/publications/105029115108
U2 - 10.1109/TQE.2026.3659096
DO - 10.1109/TQE.2026.3659096
M3 - 文章
AN - SCOPUS:105029115108
SN - 2689-1808
VL - 7
JO - IEEE Transactions on Quantum Engineering
JF - IEEE Transactions on Quantum Engineering
M1 - 2500418
ER -