Q-Tag: Watermarking Quantum Circuit Generative Models
Yang Yang, Yuzhu Long, Han Fang, Zhaoyun Chen, Zhonghui Li, Weiming Zhang, Guoping Guo

TL;DR
This paper introduces a novel watermarking framework for quantum circuit generative models that embeds ownership information during the generation process, ensuring high fidelity and robustness against attacks, thus enhancing security in quantum AI applications.
Contribution
It presents the first integrated watermarking method specifically designed for quantum circuit generative models, combining a symmetric sampling strategy and a synchronization mechanism for robustness.
Findings
High-fidelity quantum circuit generation maintained
Robust watermark detection under various perturbations
Effective protection of quantum circuit ownership
Abstract
Quantum cloud platforms have become the most widely adopted and mainstream approach for accessing quantum computing resources, due to the scarcity and operational complexity of quantum hardware. In this service-oriented paradigm, quantum circuits, which constitute high-value intellectual property, are exposed to risks of unauthorized access, reuse, and misuse. Digital watermarking has been explored as a promising mechanism for protecting quantum circuits by embedding ownership information for tracing and verification. However, driven by recent advances in generative artificial intelligence, the paradigm of quantum circuit design is shifting from individually and manually constructed circuits to automated synthesis based on quantum circuit generative models (QCGMs). In such generative settings, protecting only individual output circuits is insufficient, and existing post hoc,…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Physical Unclonable Functions (PUFs) and Hardware Security · Quantum-Dot Cellular Automata
