• English
  • Deutsch
  • Log In
    Password Login
    Research Outputs
    Fundings & Projects
    Researchers
    Institutes
    Statistics
Repository logo
Fraunhofer-Gesellschaft
  1. Home
  2. Fraunhofer-Gesellschaft
  3. Artikel
  4. Enhancing the scalability of classical surrogates for real-world quantum machine learning applications
 
  • Details
  • Full
Options
2026
Journal Article
Title

Enhancing the scalability of classical surrogates for real-world quantum machine learning applications

Abstract
Quantum machine learning (QML) presents potential for early industrial adoption, yet limited access to quantum hardware remains a significant bottleneck for deployment of QML solutions. This work explores the use of classical surrogates to bypass this restriction, which is a technique that allows to build a lightweight classical representation of a (trained) quantum model, enabling to perform inference on entirely classical devices. We reveal prohibitive high computational demand associated with previously proposed methods for generating classical surrogates from quantum models, and propose an alternative pipeline enabling generation of classical surrogates at a larger scale than was previously possible. Previous methods required at least a high-performance computing (HPC) system for quantum models of below industrial scale (ca. 20 qubits), which raises questions about its practicality. We greatly minimize the redundancies of the previous approach, utilizing only a minute fraction of the resources previously needed. We demonstrate the effectiveness of our method on a real-world energy demand forecasting problem, conducting rigorous testing of performance and computation demand in both simulations and on quantum hardware. Our results indicate that our method achieves high accuracy on the testing dataset while its computational resource requirements scale polynomially rather than exponentially. This work presents a lightweight approach to transform quantum solutions into classically deployable versions, facilitating faster integration of quantum technology in industrial settings. Furthermore, it can serve as a powerful research tool in search of a practical quantum advantage in an empirical setup.
Author(s)
Hernicht, Philip Anton
E.ON Digital Technology
Sakhnenko, Alona
Fraunhofer-Institut für Kognitive Systeme IKS  
O’Meara, Corey
E.ON Digital Technology
Cortiana, Giorgio
E.ON Digital Technology
Lorenz, Jeanette Miriam  orcid-logo
Fraunhofer-Institut für Kognitive Systeme IKS  
Journal
Quantum machine intelligence  
Open Access
File(s)
Download (2.45 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.1007/s42484-026-00420-6
10.24406/publica-9669
Additional link
Full text
Language
English
Fraunhofer-Institut für Kognitive Systeme IKS  
Fraunhofer Group
Fraunhofer-Verbund IUK-Technologie  
Keyword(s)
  • quantum machine learning

  • QML

  • classical surrogate

  • engergy demanding forecasting

  • computational demand

  • quantum technology integration

  • Cookie settings
  • Imprint
  • Privacy policy
  • Api
  • Contact
© 2024