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March 24, 2022
Paper (Preprint, Research Paper, Review Paper, White Paper, etc.)
Title

Quantum Feature Selection

Title Supplement
Published on arXiv
Abstract
In machine learning, fewer features reduce model complexity. Carefully assessing the influence of each input feature on the model quality is therefore a crucial preprocessing step. We propose a novel feature selection algorithm based on a quadratic unconstrained binary optimization (QUBO) problem, which allows to select a specified number of features based on their importance and redundancy. In contrast to iterative or greedy methods, our direct approach yields higher- quality solutions. QUBO problems are particularly interesting because they can be solved on quantum hardware. To evaluate our proposed algorithm, we conduct a series of numerical experiments using a classical computer, a quantum gate computer and a quantum annealer. Our evaluation compares our method to a range of standard methods on various benchmark datasets. We observe competitive performance.
Author(s)
Mücke, Sascha
TU Dortmund  
Heese, Raoul  
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Müller, Sabine
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Wolter, Moritz  
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Piatkowski, Nico  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Project(s)
ML2R  
AnQuC-3
Funder
Bundesministerium für Bildung und Forschung -BMBF-
Ministerium für Wissenschaft und Gesundheit Rheinland-Pfalz
DOI
10.48550/arXiv.2203.13261
Language
English
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Fraunhofer-Institut für Techno- und Wirtschaftsmathematik ITWM  
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
Keyword(s)
  • Feature Selection

  • VQE

  • Quantum Annealer

  • QUBO

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