Protecting Quantum Circuits Through Compiler-Resistant Obfuscation

Fuente: arXiv
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Main Authors: Parayil, Pradyun, Raj, Amal, Balachandran, Vivek
Format: Preprint
Published: 2025
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author Parayil, Pradyun
Raj, Amal
Balachandran, Vivek
author_facet Parayil, Pradyun
Raj, Amal
Balachandran, Vivek
contents Quantum circuit obfuscation is becoming increasingly important to prevent theft and reverse engineering of quantum algorithms. As quantum computing advances, the need to protect the intellectual property contained in quantum circuits continues to grow. Existing methods often provide limited defense against structural and statistical analysis or introduce considerable overhead. In this paper, we propose a novel quantum obfuscation method that uses randomized U3 transformations to conceal circuit structure while preserving functionality. We implement and assess our approach on QASM circuits using Qiskit AER, achieving over 93\% semantic accuracy with minimal runtime overhead. The method demonstrates strong resistance to reverse engineering and structural inference, making it a practical and effective approach for quantum software protection.
format Preprint
id arxiv_https___arxiv_org_abs_2512_19314
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Protecting Quantum Circuits Through Compiler-Resistant Obfuscation
Parayil, Pradyun
Raj, Amal
Balachandran, Vivek
Cryptography and Security
Quantum Physics
Quantum circuit obfuscation is becoming increasingly important to prevent theft and reverse engineering of quantum algorithms. As quantum computing advances, the need to protect the intellectual property contained in quantum circuits continues to grow. Existing methods often provide limited defense against structural and statistical analysis or introduce considerable overhead. In this paper, we propose a novel quantum obfuscation method that uses randomized U3 transformations to conceal circuit structure while preserving functionality. We implement and assess our approach on QASM circuits using Qiskit AER, achieving over 93\% semantic accuracy with minimal runtime overhead. The method demonstrates strong resistance to reverse engineering and structural inference, making it a practical and effective approach for quantum software protection.
title Protecting Quantum Circuits Through Compiler-Resistant Obfuscation
topic Cryptography and Security
Quantum Physics
url https://arxiv.org/abs/2512.19314