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Enhancing aerial imagery analysis: leveraging explainability and segmentation

  • Anany Dwivedi
  • , Nick Lim
  • , Albert Bifet
  • , Eibe Frank
  • , Bernhard Pfahringer
  • University of Waikato

Résultats de recherche: Le chapitre dans un livre, un rapport, une anthologie ou une collectionContribution à une conférenceRevue par des pairs

Résumé

In the field of aerial and satellite remote sensing, the widespread adoption of deep learning brings new possibilities. Current approaches, however, often overlook the unique characteristics of aerial data. This study introduces a methodology that capitalizes on distinctive features, leveraging additional annotations for enhanced neural network training. Despite modest gains in classification accuracy, the synergy of enhanced explainability, automated segmentation, and targeted classification demonstrates nuanced improvements. Preliminary results showcase potential applications in land cover mapping. This work can be extented towards reducing dependency on labor-intensive human annotations through an iterative annotation and training loop.

langue originaleAnglais
titre2024 International Conference on Machine Intelligence for GeoAnalytics and Remote Sensing, MIGARS 2024
EditeurInstitute of Electrical and Electronics Engineers Inc.
ISBN (Electronique)9798350389678
Les DOIs
étatPublié - 1 janv. 2024
Modification externeOui
Evénement2024 International Conference on Machine Intelligence for GeoAnalytics and Remote Sensing, MIGARS 2024 - Wellington, Nouvelle-Zélande
Durée: 8 avr. 202410 avr. 2024

Série de publications

Nom2024 International Conference on Machine Intelligence for GeoAnalytics and Remote Sensing, MIGARS 2024

Une conférence

Une conférence2024 International Conference on Machine Intelligence for GeoAnalytics and Remote Sensing, MIGARS 2024
Pays/TerritoireNouvelle-Zélande
La villeWellington
période8/04/2410/04/24

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