English

On Circuit-based Hybrid Quantum Neural Networks for Remote Sensing Imagery Classification

Image and Video Processing 2024-10-28 v2 Computer Vision and Pattern Recognition Emerging Technologies Quantum Physics

Abstract

This article aims to investigate how circuit-based hybrid Quantum Convolutional Neural Networks (QCNNs) can be successfully employed as image classifiers in the context of remote sensing. The hybrid QCNNs enrich the classical architecture of CNNs by introducing a quantum layer within a standard neural network. The novel QCNN proposed in this work is applied to the Land Use and Land Cover (LULC) classification, chosen as an Earth Observation (EO) use case, and tested on the EuroSAT dataset used as reference benchmark. The results of the multiclass classification prove the effectiveness of the presented approach, by demonstrating that the QCNN performances are higher than the classical counterparts. Moreover, investigation of various quantum circuits shows that the ones exploiting quantum entanglement achieve the best classification scores. This study underlines the potentialities of applying quantum computing to an EO case study and provides the theoretical and experimental background for futures investigations.

Keywords

Cite

@article{arxiv.2109.09484,
  title  = {On Circuit-based Hybrid Quantum Neural Networks for Remote Sensing Imagery Classification},
  author = {Alessandro Sebastianelli and Daniela A. Zaidenberg and Dario Spiller and Bertrand Le Saux and Silvia Liberata Ullo},
  journal= {arXiv preprint arXiv:2109.09484},
  year   = {2024}
}

Comments

Submitted to the JSTARS special issue on "Quantum resources for Earth Observation" for possible publication

R2 v1 2026-06-24T06:08:15.403Z