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  4. Leveraging Diffusion Models for Parameterized Quantum Circuit Generation
 
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May 27, 2025
Paper (Preprint, Research Paper, Review Paper, White Paper, etc.)
Title

Leveraging Diffusion Models for Parameterized Quantum Circuit Generation

Title Supplement
Published on arXiv
Abstract
Quantum computing holds immense potential, yet its practical success depends on multiple factors, including advances in quantum circuit design. In this paper, we introduce a generative approach based on denoising diffusion models (DMs) to synthesize parameterized quantum circuits (PQCs). Extending the recent diffusion model pipeline of Fürrutter et al. [1], our model effectively conditions the synthesis process, enabling the simultaneous generation of circuit architectures and their continuous gate parameters. We demonstrate our approach in synthesizing PQCs optimized for generating high-fidelity Greenberger-Horne-Zeilinger (GHZ) states and achieving high accuracy in quantum machine learning (QML) classification tasks. Our results indicate a strong generalization across varying gate sets and scaling qubit counts, highlighting the versatility and computational efficiency of diffusion-based methods. This work illustrates the potential of generative models as a powerful tool for accelerating and optimizing the design of PQCs, supporting the development of more practical and scalable quantum applications.
Author(s)
Barta, Daniel
Technische Universität Berlin  
Martyniuk, Darya  
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Jung, Johannes
Freie Universität Berlin  
Paschke, Adrian  
Freie Universität Berlin  
Language
English
Fraunhofer-Institut für Offene Kommunikationssysteme FOKUS  
Keyword(s)
  • Quantum Circuit Synthesis

  • Parameterized Quantum Circuits

  • Generative Models

  • Quantum Computing

  • Quantum Architecture Search

  • Diffusion Models

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