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  4. Quantum-classical convolutional neural networks in radiological image classification
 
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2022
Conference Paper
Title

Quantum-classical convolutional neural networks in radiological image classification

Abstract
Quantum machine learning is receiving significant attention currently, but its usefulness in comparison to classical machine learning techniques for practical applications remains unclear. However, there are indications that certain quantum machine learning algorithms might result in improved training capabilities with respect to their classical counterparts - which might be particularly beneficial in situations with little training data available. Such situations naturally arise in medical classification tasks. Within this paper, different hybrid quantum-classical convolutional neural networks (QCCNN) with varying quantum circuit designs and encoding techniques are proposed. They are applied to two- and three-dimensional medical imaging data, e.g. featuring different, potentially malign, lesions in computed tomography scans. The performance of these QCCNNs is already similar to the one of their classical counterparts therefore encouraging further studies towards the direction of applying these algorithms within medical imaging tasks.
Author(s)
Matic, Andrea
Fraunhofer-Institut für Kognitive Systeme IKS  
Monnet, Maureen
Fraunhofer-Institut für Kognitive Systeme IKS  
Schachtner, Balthasar
Ludwig-Maximilians-Universität München, Department of Radiology
Lorenz, Jeanette Miriam  orcid-logo
Fraunhofer-Institut für Kognitive Systeme IKS  
Messerer, Thomas  
Fraunhofer-Institut für Kognitive Systeme IKS  
Mainwork
IEEE International Conference on Quantum Computing and Engineering, QCE 2022. Proceedings  
Project(s)
BayQC-Hub
Funder
Bayerisches Staatsministerium für Wirtschaft, Landesentwicklung und Energie  
Conference
International Conference on Quantum Computing and Engineering 2022  
Open Access
DOI
10.1109/QCE53715.2022.00024
Language
English
Fraunhofer-Institut für Kognitive Systeme IKS  
Keyword(s)
  • quantum computing

  • quantum machine learning

  • convolutional neural networks

  • imaging

  • medical classification

  • CT scan

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